Magnetic recording medium and magnetic recording medium cartridge

The magnetic recording medium addresses reliability issues by connecting a leader tape with a maximum step of 34 μm and a thin substrate to maintain consistent width, enhancing recording capacity and accuracy in magnetic recording devices.

JP7806797B2Active Publication Date: 2026-01-27SONY GROUP CORP
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Patent Information

Application Number
JP2023539632
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-08-06
Filing Date
2022-03-18
Publication Date
2026-01-27
Estimated Expiration
2042-03-18

AI Technical Summary

Technical Problem

Magnetic recording media face challenges in maintaining operational reliability due to dimensional changes caused by environmental factors, leading to read errors and reduced recording capacity as track widths narrow, affecting both the magnetic recording/reproducing device and medium.

Method used

A magnetic recording medium with a magnetic recording tape and leader tape connected in the longitudinal direction, where the maximum step portion between them is 34 μm or less, and a substrate thickness of 4.4 μm or less, combined with specific layer configurations and materials to maintain a constant width and reduce surface irregularities.

Benefits of technology

Ensures high recording capacity and operational reliability by maintaining a consistent tape width, reducing surface irregularities, and enhancing electromagnetic conversion characteristics, thus improving data read accuracy and device performance.

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Abstract

Provided is a magnetic recording medium capable of exhibiting excellent operational reliability while dealing with a further increase in capacity. This magnetic recording medium has a longitudinally extending magnetic recording tape and a leader tape connected to the magnetic recording tape in the longitudinal direction. Furthermore, among multiple step parts formed on the leader tape after being run in accordance with conditions 1 to 3 given below, the step part located at the closest position to the part where the leader tape and the magnetic recording tape are connected together has a maximum step difference of 34 µm or less in a thickness direction of the leader tape. Here, condition 1 refers to an environment with a temperature of 23 ˚C and a relative humidity of 45% RH, condition 2 refers to use of a drive in compliance with the LTO-9 standard, and condition 3 refers to repetition of recording and playback operations of 18 terabytes of data for 140 times.
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Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE The present disclosure relates to magnetic recording media and magnetic recording media cartridges. [Background technology]

[0002] Tape-type magnetic recording media are widely used for storing electronic data. To date, magnetic recording media have been proposed in which a leader tape is attached to the tip of the magnetic recording tape on which information is recorded (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2005-310354 Summary of the Invention

[0004] Incidentally, it is expected that the capacity of magnetic recording media will continue to increase in the future.

[0005] Therefore, there is a demand for a magnetic recording medium that can accommodate ever-increasing capacities while providing excellent operational reliability.

[0006] A magnetic recording medium according to an embodiment of the present disclosure includes a magnetic recording tape extending in the longitudinal direction and a leader tape connected to the magnetic recording tape in the longitudinal direction. Furthermore, among multiple step portions that appear on the leader tape after running in accordance with the following conditions 1 to 3, the maximum step portion closest to the connection between the leader tape and the magnetic recording tape is 34 μm or less in the thickness direction of the leader tape. Condition 1 requires an environment with a temperature of 23°C and a relative humidity of 45% RH, Condition 2 requires the use of a drive conforming to the LTO9 standard, and Condition 3 requires 140 round trips for running to record and play back a capacity of 18 terabytes. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a schematic diagram illustrating a configuration example of a magnetic recording cartridge according to a first embodiment of the present disclosure. [Figure 2] 2 is an enlarged cross-sectional view of the magnetic recording tape in the magnetic recording medium shown in FIG. 1. FIG. [Figure 3] FIG. 3 is a cross-sectional view that schematically shows the cross-sectional structure of an ε-iron oxide particle contained in the magnetic layer shown in FIG. [Figure 4] 3 is a graph showing an example of an SFD curve of the magnetic recording tape shown in FIG. 2. [Figure 5] FIG. 1 is a schematic diagram illustrating the appearance of a measuring device used to measure the width of a magnetic recording medium. [Figure 6] 2 is an enlarged cross-sectional view of a leader tape in the magnetic recording medium shown in FIG. 1. FIG. [Figure 7A] 2 is an enlarged schematic plan view showing the connection portion between the leader tape and the magnetic recording tape shown in FIG. 1. FIG. [Figure 7B] 2 is an enlarged schematic cross-sectional view showing the connection portion between the leader tape and the magnetic recording tape shown in FIG. 1. FIG. [Figure 8] FIG. 2 is an explanatory diagram schematically illustrating the uneven shape of the surface of the leader tape. [Figure 9] 2 is an enlarged schematic view of a portion of the reel of the magnetic recording cartridge shown in FIG. 1. FIG. [Figure 10] FIG. 2 is an explanatory diagram for explaining a method for measuring the maximum step of the leader tape shown in FIG. [Figure 11] 2 is a schematic diagram illustrating an example of the configuration of a recording / reproducing device equipped with the magnetic recording cartridge of FIG. 1. [Figure 12] FIG. 2 is a cross-sectional view of an ε-iron oxide particle according to a modified example of the first embodiment. [Figure 13] FIG. 10 is a cross-sectional view of a magnetic recording medium according to another modified example of the first embodiment. [Figure 14] FIG. 4 is a cross-sectional view of a magnetic recording medium according to a second embodiment of the present disclosure. [Figure 15] 15 is a schematic diagram illustrating an example of the configuration of a sputtering apparatus used in manufacturing the magnetic recording medium shown in FIG. 14. [Figure 16A] 12 is a diagram illustrating a method for measuring PES using the recording and reproducing device of FIG. 11. FIG. [Figure 16B] FIG. 12 is a schematic diagram of a head unit of the recording / reproducing device of FIG. [Figure 16C] FIG. 10 is a diagram illustrating a method for measuring a servo trace line. DETAILED DESCRIPTION OF THE INVENTION

[0008] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. Note that the embodiments described below are representative embodiments of the present technology, and the present technology is not limited to the following embodiments.

[0009] The explanation will be given in the following order. 0. Overview of this technology 1. First embodiment (example of magnetic recording cartridge including magnetic recording medium) 1-1. Structure of magnetic recording cartridge 1-2. Structure of magnetic recording media 1-3.How to measure the step of the leader tape 1-4. Manufacturing method of magnetic recording medium 1-5. Recording and playback equipment 1-6.Effects 1-7. Variations 2. Second embodiment (example of magnetic recording cartridge including sputter-type magnetic recording medium) 2-1. Structure of magnetic recording cartridge 2-2. Structure of magnetic recording media 2-3.Configuration of sputtering equipment 2-4. Manufacturing method of magnetic recording media 2-5.Effects 2-6. Variations 3. Working Example

[0010] <0. Overview of this technology> First, we will explain how the technology of the present disclosure was created. In recent years, there has been a demand for further increasing the recording capacity per magnetic recording cartridge used in computer data storage and the like. To increase the recording capacity, for example, the track width or the distance between adjacent tracks on the tape-like magnetic recording medium housed in the magnetic recording cartridge has been narrowed. However, narrowing the track width or the distance between adjacent tracks reduces the allowable dimensional change of the magnetic recording medium itself due to environmental factors such as changes in temperature and humidity. In other words, due to variations in the width of the magnetic recording medium, a magnetic recording / reproducing device may be unable to accurately read data recorded on the magnetic recording medium, resulting in a read error. This may impair the operational reliability of the magnetic recording / reproducing device and the reliability of the magnetic recording medium used in the magnetic recording / reproducing device.

[0011] Therefore, the present applicant has proposed a magnetic recording / reproducing device that can maintain a substantially constant width of a tape-like magnetic recording medium by adjusting the longitudinal tension of the magnetic recording medium, and a magnetic recording medium suitable for such a device. The magnetic recording / reproducing device detects, for example, the width of the magnetic recording medium or any change in the width, and adjusts the longitudinal tension applied to the magnetic recording medium based on the detection results. By applying a predetermined tension to the magnetic recording medium, the width of the magnetic recording medium can be maintained substantially constant, ensuring the reliability of the magnetic recording medium and the magnetic recording / reproducing device.

[0012] However, applying a certain tension to a magnetic recording medium can make bends and dents that occur on the surface of the magnetic recording medium more noticeable. For example, in a magnetic recording medium, a leader tape is connected to the tip of the magnetic recording tape on which information is recorded. Typically, a leader pin is provided at the end of the leader tape, which is attached to the take-up reel (hereinafter referred to as the take-up reel) on the tape drive side. The take-up reel has a notch into which a part connected to the leader pin fits. When the part connected to the leader pin fits into the notch, a slight step occurs in the take-up portion of the take-up reel. For this reason, for example, if the magnetic recording medium is stored in a state where it is wound around the take-up reel at high tension, the step in the take-up reel is transferred to the surface of the magnetic recording tape, which can cause bends and dents on the surface of the magnetic recording medium.

[0013] In view of this situation, the present applicant proposes a magnetic recording medium that has a high recording density and is capable of realizing excellent recording and reproducing operations.

[0014] 1. First embodiment (example of magnetic recording cartridge including coated magnetic recording medium) [1-1. Configuration of Magnetic Recording Cartridge 1] First, with reference to FIG. 1, the configuration of a magnetic recording cartridge 1 according to a first embodiment of the present disclosure will be described. FIG. 1 is a schematic diagram showing an example of the magnetic recording cartridge 1. The magnetic recording cartridge 1 includes a cartridge case 2 and a cartridge reel 3 provided therein. A tape-like magnetic recording medium TM is wound around the cartridge reel 3. When recording to the magnetic recording medium TM or when reproducing from the magnetic recording medium TM, the magnetic recording medium TM runs along its own longitudinal direction. The magnetic recording medium TM is preferably one used in a recording / reproducing device equipped with, for example, a ring-type head as a recording head.

[0015] [1-2. Configuration of magnetic recording medium TM] 1 schematically shows a state in which the vicinity of the end of the outermost layer of the magnetic recording medium TM wound around a cartridge reel 3 has been pulled out from a cartridge case 2. The tape-like magnetic recording medium TM has a magnetic recording tape 10 and a leader tape 20 that extend in the longitudinal direction of the magnetic recording medium TM. The magnetic recording tape 10 and the leader tape 20 are connected to each other in the longitudinal direction of the magnetic recording medium TM.

[0016] The magnetic recording tape 10 is a portion on which various types of information can be magnetically recorded. The leader tape 20 is a portion that is wound around the cartridge reel 3 after the magnetic recording tape 10, and has, for example, a strength greater than that of the magnetic recording tape 10. A leader pin 20P is provided at the end of the leader tape 20. When the magnetic recording cartridge 1 is loaded into a recording / reproducing device 30 (described later), the leader tape 20 is pulled out from the magnetic recording cartridge 1, and the leader pin 20P is attached to a take-up reel 32 (described later) provided in the recording / reproducing device 30. The recording / reproducing device 30 is a drive (recording / reproducing device) that complies with the LTO9 standard.

[0017] (Magnetic Recording Tape 10) FIG. 2 schematically shows an example of the cross-sectional structure of a magnetic recording tape 10. As shown in FIG. 2, the magnetic recording tape 10 has a laminated structure in which multiple layers are stacked. Specifically, the magnetic recording tape 10 comprises a long tape-like substrate 11, an underlayer 12 provided on a major surface 11A of the substrate 11, a magnetic layer 13 provided on the underlayer 12, and a back layer 14 provided on a major surface 11B of the substrate 11 opposite the major surface 21A. When the magnetic recording medium TM runs, the surface 13S of the magnetic layer 13 slides over the surface of the magnetic head. Note that the underlayer 12 and the back layer 14 are provided as needed and are not required.

[0018] (Base 11) The substrate 11 is a non-magnetic support that supports the underlayer 12 and the magnetic layer 13. The substrate 11 is in the form of a long film. The upper limit of the average thickness of the substrate 11 is preferably 4.4 μm or less, more preferably 4.2 μm or less. When the upper limit of the average thickness of the substrate 11 is 4.2 μm or less, the recording capacity that can be recorded on one magnetic recording cartridge 1 can be increased compared to that of a general magnetic recording medium. For example, the recording capacity that can be recorded on one LTO-shaped magnetic recording cartridge 1 can be increased to 15 TB or more. The lower limit of the average thickness of the substrate 11 is preferably 3 μm or more, more preferably 3.2 μm or more. When the lower limit of the average thickness of the substrate 11 is 3 μm or more, a decrease in the strength of the substrate 11 can be suppressed.

[0019] The average thickness of the substrate 11 is determined as follows. First, a ½-inch wide magnetic recording tape 10 is prepared and cut into a length of 250 mm to prepare a sample. Next, all layers of the sample other than the substrate 11, i.e., the underlayer 12, magnetic layer 13, and back layer 14, are removed with a solvent such as MEK (methyl ethyl ketone) or dilute hydrochloric acid. Next, using a Mitutoyo Laser Hologram (LGH-110C) as a measuring device, the thickness of the sample substrate 11 is measured at five or more positions. The measured values ​​are then simply averaged (arithmetic mean) to calculate the average thickness of the substrate 11. Note that the measurement positions are selected randomly from the sample.

[0020] The substrate 11 contains, for example, polyesters as a main component. Alternatively, the substrate 11 may contain PEEK (polyether ether ketone) as a main component. In addition to polyesters or PEEK, the substrate 11 may also contain at least one of polyolefins, cellulose derivatives, vinyl resins, and other polymer resins. When the substrate 11 contains two or more of the above materials, the two or more materials may be mixed, copolymerized, or laminated.

[0021] The polyesters contained in the base 11 include, for example, at least one of PET (polyethylene terephthalate), PEN (polyethylene naphthalate), PBT (polybutylene terephthalate), PBN (polybutylene naphthalate), PCT (polycyclohexylene dimethylene terephthalate), PEB (polyethylene-p-oxybenzoate), and polyethylene bisphenoxycarboxylate.

[0022] The polyolefins contained in the base 11 include, for example, at least one of PE (polyethylene) and PP (polypropylene). The cellulose derivatives include, for example, at least one of cellulose diacetate, cellulose triacetate, CAB (cellulose acetate butyrate), and CAP (cellulose acetate propionate). The vinyl resins include, for example, at least one of PVC (polyvinyl chloride) and PVDC (polyvinylidene chloride).

[0023] Other polymer resins contained in the base 11 include, for example, at least one of PA (polyamide, nylon), aromatic PA (aromatic polyamide, aramid), PI (polyimide), aromatic PI (aromatic polyimide), PAI (polyamideimide), aromatic PAI (aromatic polyamideimide), PBO (polybenzoxazole, such as Zylon (registered trademark)), polyether, PEK (polyetherketone), polyetherester, PES (polyethersulfone), PEI (polyetherimide), PSF (polysulfone), PPS (polyphenylene sulfide), PC (polycarbonate), PAR (polyarylate), and PU (polyurethane).

[0024] (Magnetic layer 13) The magnetic layer 13 is a recording layer for recording signals. The magnetic layer 13 contains, for example, magnetic powder, a binder, and a lubricant. The magnetic layer 13 may further contain additives such as conductive particles, an abrasive, and an anti-rust agent, as necessary.

[0025] The arithmetic mean roughness Ra of the surface 13S of the magnetic layer 13 is 2.5 nm or less, preferably 2.2 nm or less, and more preferably 1.9 nm or less. When the arithmetic mean roughness Ra is 2.5 nm or less, excellent electromagnetic conversion characteristics can be obtained. The lower limit of the arithmetic mean roughness Ra of the surface 13S of the magnetic layer 13 is preferably 0.4 nm or more, more preferably 0.6 nm or more, and even more preferably 0.8 nm or more. When the lower limit of the arithmetic mean roughness Ra of the surface 13S of the magnetic layer 13 is 1.0 nm or more, deterioration of running performance due to increased friction can be suppressed.

[0026] The arithmetic mean roughness Ra of the surface 13S is determined as follows. First, the surface of the magnetic layer 13 is observed with an AFM (Atomic Force Microscope) to obtain a 40 μm × 40 μm AFM image. The AFM used is a Nano Scope IIIa D3100 manufactured by Digital Instruments, and the cantilever is made of single crystal silicon, with measurements performed at a tapping frequency tuning of 200 Hz to 400 Hz. For example, the cantilever that can be used is the "SPM Probe NCH Normal Type PointProbe L (cantilever length = 125 μm)" manufactured by Nano World. Next, the AFM image is divided into 512 x 512 (= 262,144) measurement points, and the height Z(i) (i: measurement point number, i = 1 to 262,144) is measured at each measurement point. The heights Z(i) at each measurement point are simply averaged (arithmetic mean) to determine the average height (average surface) Zave (= (Z(1) + Z(2) + ··· + Z(262,144)) / 262,144). Next, the deviation Z"(i) from the average center line at each measurement point (= |Z(i) - Zave|) is calculated, and the arithmetic mean roughness Ra [nm] (= (Z"(1) + Z"(2) + ··· + Z"(262,144)) / 262,144) is calculated. In this case, the image is filtered using Flatten order 2 and planefit order 3 XY before use. When determining the arithmetic mean roughness Ra of the surface 13S, measurement samples are taken from three different locations along the longitudinal direction of the magnetic recording tape 10 of the magnetic recording medium TM housed in the magnetic recording cartridge 1, within a range of 10 m or less from the splice 4. The three taken measurement samples are observed using the AFM as described above. The arithmetic mean roughness Ra of the surface 13S of each measurement sample is calculated as described above, and the calculated values ​​of all three measurement samples are simply averaged to determine the arithmetic mean roughness Ra of the entire surface 13S of the magnetic recording tape 10.

[0027] From the viewpoint of ensuring a high recording capacity, the magnetic layer 13 is configured to be able to record data such that the minimum value of the distance L between magnetization reversals is preferably 48 nm or less, more preferably 44 nm or less, and even more preferably 40 nm or less. From the viewpoint of the magnetic grain size, the lower limit of the minimum value of the distance L between magnetization reversals is preferably 20 nm or more.

[0028] The upper limit of the average thickness of magnetic layer 13 is preferably 90 nm or less, particularly preferably 80 nm or less, more preferably 70 nm or less, and even more preferably 50 nm or less. If the upper limit of the average thickness of magnetic layer 13 is 90 nm or less, when a ring-type head is used as the recording head, magnetization can be recorded uniformly in the thickness direction of magnetic layer 13, thereby improving the electromagnetic conversion characteristics.

[0029] The lower limit of the average thickness of magnetic layer 13 is preferably 35 nm or more. If the upper limit of the average thickness of magnetic layer 13 is 35 nm or more, output can be ensured when an MR head is used as the reproducing head, thereby improving the electromagnetic conversion characteristics.

[0030] The average thickness of the magnetic layer 13 is determined as follows.

[0031] First, the magnetic recording tape 10 is processed and thinned by a method such as FIB (Focused Ion Beam). When using the FIB method, a carbon film and a tungsten thin film are formed as protective films as a pretreatment for observing a cross-sectional TEM image, which will be described later. The carbon film is formed on the magnetic layer side surface and the back layer side surface of the magnetic recording tape 10 by vapor deposition, and the tungsten thin film is further formed on the magnetic layer side surface by vapor deposition or sputtering. The thinning is performed along the length direction (longitudinal direction) of the magnetic recording tape 10. In other words, the thinning forms a cross section parallel to both the longitudinal direction and the thickness direction of the magnetic recording tape 10. The cross section of the obtained thinned sample is observed using a transmission electron microscope (TEM) under the following conditions to obtain a TEM image. Note that the magnification and acceleration voltage may be adjusted appropriately depending on the type of device. Apparatus: TEM (Hitachi H9000NAR) Accelerating voltage: 300 kV Magnification: 100,000x

[0032] Next, using the obtained TEM image, the thickness of the magnetic layer 13 is measured at at least 10 positions in the longitudinal direction of the magnetic recording tape 10. The obtained measurements are simply averaged (arithmetic mean) to obtain the average thickness of the magnetic layer 13. The positions where the measurement is performed are selected randomly from the test piece.

[0033] (magnetic powder) The magnetic powder includes, for example, a powder of nanoparticles containing ε-iron oxide (hereinafter referred to as "ε-iron oxide particles"). Even fine particles of ε-iron oxide can achieve high coercive force. It is preferable that the ε-iron oxide contained in the ε-iron oxide particles has a crystal orientation preferentially in the thickness direction (perpendicular direction) of the magnetic recording tape 10.

[0034] FIG. 3 is a cross-sectional view schematically illustrating an example of the cross-sectional structure of an ε-iron oxide particle 50 contained in the magnetic layer 13. As shown in FIG. 3, the ε-iron oxide particle 50 is spherical or nearly spherical, or cubic or nearly cubic. Because the ε-iron oxide particle 50 has the above-described shape, when the ε-iron oxide particle 50 is used as the magnetic particle, the contact area between particles in the thickness direction of the magnetic recording tape 10 can be reduced and particle aggregation can be suppressed compared to when hexagonal plate-shaped barium ferrite particles are used as the magnetic particle. This improves the dispersibility of the magnetic powder and allows for a better SNR (Signal-to-Noise Ratio).

[0035] The ε-iron oxide particle 50 has, for example, a core-shell structure. Specifically, as shown in Fig. 3, the ε-iron oxide particle 50 includes a core 51 and a two-layer shell 52 provided around the core 51. The two-layer shell 52 includes a first shell 52a provided on the core 51 and a second shell 52b provided on the first shell 52a.

[0036] The core 51 of the ε-iron oxide particle 50 contains ε-iron oxide. The ε-iron oxide contained in the core 51 preferably has ε-Fe2O3 crystals as a main phase, and more preferably is made of single-phase ε-Fe2O3.

[0037] The first shell portion 52a covers at least a portion of the periphery of the core portion 51. Specifically, the first shell portion 52a may cover a portion of the periphery of the core portion 51, or may cover the entire periphery of the core portion 51. From the viewpoint of ensuring sufficient exchange coupling between the core portion 51 and the first shell portion 52a and improving magnetic properties, it is preferable that the entire surface of the core portion 51 be covered.

[0038] The first shell portion 52a is a so-called soft magnetic layer and includes a soft magnetic material such as α-Fe, a Ni-Fe alloy, or an Fe-Si-Al alloy. The α-Fe may be obtained by reducing ε-iron oxide contained in the core portion 51.

[0039] The second shell portion 52b is an oxide coating serving as an anti-oxidation layer. The second shell portion 52b contains α-iron oxide, aluminum oxide, or silicon oxide. The α-iron oxide contains at least one iron oxide selected from Fe3O4, Fe2O3, and FeO. When the first shell portion 52a contains α-Fe (soft magnetic material), the α-iron oxide may be obtained by oxidizing the α-Fe contained in the first shell portion 52a.

[0040] By having the first shell portion 52a as described above, the ε-iron oxide particles 50 can maintain a high coercivity Hc of the core portion 51 alone to ensure thermal stability, while adjusting the coercivity Hc of the entire ε-iron oxide particles (core-shell particles) 20 to a coercivity Hc suitable for recording. Furthermore, by having the second shell portion 52b as described above, the ε-iron oxide particles 50 can be prevented from deteriorating in the properties of the ε-iron oxide particles 50 due to rust or the like occurring on the particle surface when exposed to air during or before the manufacturing process of the magnetic recording tape 10. Therefore, by covering the first shell portion 52a with the second shell portion 52b, deterioration in the properties of the magnetic recording tape 10 can be suppressed.

[0041] The average particle size (average maximum particle size) of the magnetic powder is preferably 25 nm or less, more preferably 8 nm to 22 nm, and even more preferably 12 nm to 22 nm. In the magnetic recording tape 10, the actual magnetization region is a region half the size of the recording wavelength. Therefore, a good S / N ratio can be obtained by setting the average particle size of the magnetic powder to half the shortest recording wavelength or less. Therefore, when the average particle size of the magnetic powder is 22 nm or less, good electromagnetic conversion characteristics (e.g., SNR) can be obtained in a high-recording-density magnetic recording tape 10 (e.g., a magnetic recording tape 10 configured to record signals at the shortest recording wavelength of 50 nm or less). On the other hand, when the average particle size of the magnetic powder is 8 nm or more, the dispersibility of the magnetic powder is further improved, and better electromagnetic conversion characteristics (e.g., SNR) can be obtained.

[0042] The average aspect ratio of the magnetic powder is preferably 1 or more and 3.0 or less, more preferably 1 or more and 2.8 or less, and even more preferably 1 or more and 1.8 or less. When the average aspect ratio of the magnetic powder is within the range of 1 or more and 3.0 or less, aggregation of the magnetic powder can be suppressed, and the resistance applied to the magnetic powder when the magnetic powder is vertically oriented in the process of forming the magnetic layer 13 can be suppressed. Therefore, the vertical orientation of the magnetic powder can be improved.

[0043] The average particle size and average aspect ratio of the magnetic powder are determined as follows. First, the magnetic recording tape 10 to be measured is processed and thinned by a method such as FIB (Focused Ion Beam). The thinning is performed along the length direction (longitudinal direction) of the magnetic tape. In other words, this thinning forms a cross section parallel to both the longitudinal direction and the thickness direction of the magnetic recording tape 10. The obtained thinned sample is then examined using a transmission electron microscope (Hitachi High-Tech) Using a TEM (H-9500 manufactured by TECHNOLOGIES), cross-section observation is performed in the thickness direction of the magnetic layer 13 so as to include the entire magnetic layer 13, and a TEM photograph is taken at an acceleration voltage of 200 kV and a total magnification of 500,000 times. Next, 50 particles are randomly selected from the TEM photograph, and the major axis length DL and minor axis length DS of each particle are measured. Here, the major axis length DL is the longest distance between two parallel lines drawn from all angles so as to be tangent to the outline of each particle (the so-called On the other hand, the minor axis length DS means the maximum length of the particle in the direction perpendicular to the major axis length DL of the particle.

[0044] Next, the long axis lengths DL of the measured 50 particles are simply averaged (arithmetic mean) to determine the average long axis length DLave. The average long axis length DLave thus determined is the average particle size of the magnetic powder. The short axis lengths DS of the measured 50 particles are also simply averaged (arithmetic mean) to determine the average short axis length DSave. Then, the average particle size is calculated from the average long axis length DLave and the average short axis length DSave. Calculate the average aspect ratio (DLave / DSave).

[0045] The average particle volume of the magnetic powder is, for example, 400 nm 3 More than 1800nm 3 Furthermore, the average particle volume of the magnetic powder is 400 nm 3 More than 1500nm 3 Preferably, it is 400 nm or less. 3 More than 1200nm 3 It is more preferable that the ratio is less than or equal to the above.

[0046] When the ε iron oxide particles 50 are spherical or nearly spherical, the average particle volume of the magnetic powder can be calculated as follows. First, the average major axis length DLave is calculated using the same method as for calculating the average particle size of the magnetic powder described above. Next, the average particle volume V of the magnetic powder is calculated using the following formula: V = (π / 6) × (DLave) 3

[0047] (binder) As the binder, a resin having a structure in which a crosslinking reaction is imparted to a polyurethane resin, a vinyl chloride resin, or the like is preferred. However, the binder is not limited to these, and other resins may be appropriately blended depending on the physical properties required of the magnetic recording tape 10. There is no particular limitation on the resin to be blended, so long as it is a resin that is generally used in coating-type magnetic recording tape 10.

[0048] Examples of the polymer include polyvinyl chloride, polyvinyl acetate, vinyl chloride-vinyl acetate copolymer, vinyl chloride-vinylidene chloride copolymer, vinyl chloride-acrylonitrile copolymer, acrylic acid ester-acrylonitrile copolymer, acrylic acid ester-vinyl chloride-vinylidene chloride copolymer, vinyl chloride-acrylonitrile copolymer, acrylic acid ester-acrylonitrile copolymer, acrylic acid ester-vinylidene chloride copolymer, methacrylic acid ester-vinylidene chloride copolymer, methacrylic acid ester-vinyl chloride copolymer, methacrylic acid ester-ethylene copolymer, polyvinyl fluoride, vinylidene chloride-acrylonitrile copolymer, acrylonitrile-butadiene copolymer, polyamide resin, polyvinyl butyral, cellulose derivatives (cellulose acetate butyrate, cellulose diacetate, cellulose triacetate, cellulose propionate, nitrocellulose), styrene-butadiene copolymer, polyester resin, amino resin, and synthetic rubber.

[0049] Examples of thermosetting resins or reactive resins include phenolic resins, epoxy resins, urea resins, melamine resins, alkyd resins, silicone resins, polyamine resins, and urea-formaldehyde resins.

[0050] Furthermore, to improve the dispersibility of the magnetic powder, polar functional groups such as -SO3M, -OSO3M, -COOM, and P=O(OM)2 may be introduced into each of the binders described above, where M in the above chemical formula is a hydrogen atom or an alkali metal such as lithium, potassium, or sodium.

[0051] Furthermore, polar functional groups include side chain types having terminal groups of -NR1R2, -NR1R2R3+X-, and main chain types of >NR1R2+X-, where R1, R2, and R3 in the above formula are hydrogen atoms or hydrocarbon groups, and X- is fluorine, chlorine, bromine, or iodine. The polar functional group may be an ion of a halogen element, such as a fluorine atom, an ion of ... an inorganic or organic ion, or an ion of a halogen atom such as a fluorine atom, an ion of an inorganic or organic ion. The polar functional group may also be an ion of -OH, -SH, -CN, an epoxy group, or the like.

[0052] (lubricant) The lubricant contained in the magnetic layer 13 contains, for example, a fatty acid and a fatty acid ester. The fatty acid contained in the lubricant is, for example, a compound represented by the following general formula: <1> and compounds represented by the general formula <2> In addition, the fatty acid ester contained in the lubricant preferably contains at least one of compounds represented by the following general formula: <3> and compounds represented by the general formula <4> It is preferred that the lubricant contains at least one of compounds represented by the general formula: <1> and compounds represented by the general formula <3> By including two kinds of compounds represented by the general formula <2> and compounds represented by the general formula <3> By including two kinds of compounds represented by the general formula <1> and compounds represented by the general formula <4> By including two kinds of compounds represented by the general formula <2> and compounds represented by the general formula <4> By including two kinds of compounds represented by the general formula <1> a compound represented by the general formula <2> and compounds represented by the general formula <3> By including three kinds of compounds represented by the general formula <1> a compound represented by the general formula <2> and compounds represented by the general formula <4> By including three kinds of compounds represented by the general formula <1> a compound represented by the general formula <3> and compounds represented by the general formula <4> By including three kinds of compounds represented by the general formula <2> a compound represented by the general formula <3> and compounds represented by the general formula <4> or by including three kinds of compounds represented by the general formula <1> a compound represented by the general formula <2> a compound represented by the general formula <3> and compounds represented by the general formula <4> By including the four compounds represented by the formula (I), it is possible to suppress an increase in the dynamic friction coefficient due to repeated recording or reproduction on the magnetic recording tape 10. As a result, the running properties of the magnetic recording tape 10 can be further improved. CH3(CH2)kCOOH <1> (However, the general formula <1> In the formula, k is an integer selected from the range of 14 to 22, more preferably from the range of 14 to 18. CH3(CH2)nCH=CH(CH2)mCOOH ··· <2> (However, the general formula <2> In the formula, the sum of n and m is an integer selected from the range of 12 to 20, more preferably from the range of 14 to 18. CH3(CH2)pCOO(CH2)qCH3 ··· <3> (However, the general formula <3> In the formula, p is an integer selected from the range of 14 or more and 22 or less, more preferably 14 or more and 18 or less, and q is an integer selected from the range of 2 or more and 5 or less, more preferably 2 or more and 4 or less. CH3(CH2)pCOO-(CH2)qCH(CH3)2… <4> (However, the general formula <4> In the formula, p is an integer selected from the range of 14 to 22, and q is an integer selected from the range of 1 to 3.

[0053] (additives) The magnetic layer 13 may further contain non-magnetic reinforcing particles such as aluminum oxide (α, β or γ alumina), chromium oxide, silicon oxide, diamond, garnet, emery, boron nitride, titanium carbide, silicon carbide, titanium carbide, titanium oxide (rutile or anatase titanium oxide), etc.

[0054] (base layer 12) The underlayer 12 is a nonmagnetic layer containing a nonmagnetic powder and a binder. The underlayer 12 may further contain at least one additive, such as a lubricant, conductive particles, a hardener, or a rust inhibitor, as needed. The underlayer 12 may also have a multilayer structure formed by stacking multiple layers. The average thickness of the underlayer 12 is preferably 0.3 μm to 0.9 μm, more preferably 0.5 μm to 0.7 μm. By reducing the average thickness of the underlayer 12 to 0.9 μm or less, the Young's modulus of the entire magnetic recording tape 10 is more effectively reduced than when the thickness of the substrate 11 is reduced. This facilitates tension control for the magnetic recording tape 10. Furthermore, by reducing the average thickness of the underlayer 12 to 0.3 μm or more, the adhesive strength between the substrate 11 and the underlayer 12 is ensured. Furthermore, the variation in the thickness of the underlayer 12 can be reduced, preventing the surface 13S of the magnetic layer 13 from becoming rough.

[0055] The average thickness of the underlayer 12 can be determined, for example, as follows: First, a ½-inch wide magnetic recording tape 10 is prepared and cut to a length of 250 mm to prepare a sample. Next, the underlayer 12 and magnetic layer 13 of the sample magnetic recording tape 10 are peeled off from the substrate 11. Next, using a Mitutoyo Laser Hologram (LGH-110C) as a measuring device, the thickness of the laminate of the underlayer 12 and magnetic layer 13 peeled off from the substrate 11 is measured at five or more positions. After that, the measured values ​​are simply averaged (arithmetic averaged) to calculate the average thickness of the laminate of the underlayer 12 and magnetic layer 13. Note that the measurement positions are selected randomly from the sample. Finally, the average thickness of the underlayer 12 is determined by subtracting the average thickness of the magnetic layer 13 measured using the TEM as described above from the average thickness of the laminate.

[0056] The underlayer 12 preferably has a large number of holes. By storing lubricant in these holes, it is possible to further suppress a decrease in the amount of lubricant supplied between the surface 13S of the magnetic layer 13 and the magnetic head, even after repeated recording or reproduction (i.e., after the magnetic head is repeatedly brought into contact with the surface of the magnetic recording tape 10 and the tape is repeatedly run). This makes it possible to further suppress an increase in the coefficient of dynamic friction.

[0057] (Non-magnetic powder in the underlayer 12) The non-magnetic powder includes, for example, at least one of inorganic particle powder and organic particle powder. The non-magnetic powder may also include carbon powder such as carbon black. One type of non-magnetic powder may be used alone, or two or more types of non-magnetic powder may be used in combination. The inorganic particles include, for example, metals, metal oxides, metal carbonates, metal sulfates, metal nitrides, metal carbides, or metal sulfides. The shape of the non-magnetic powder may be, for example, acicular, spherical, cubic, plate-like, or other shapes, but is not limited thereto.

[0058] (Binder for base layer 12) The binder in the underlayer 12 is the same as that in the magnetic layer 13 described above.

[0059] (Back layer 14) The back layer 14 contains, for example, a binder and a non-magnetic powder. The back layer 14 may further contain at least one additive selected from the group consisting of a lubricant, a curing agent, and an antistatic agent, as necessary. The binder and non-magnetic powder in the back layer 14 are the same as those in the underlayer 12 described above.

[0060] The average particle size of the non-magnetic powder in back layer 14 is preferably 10 nm or more and 150 nm or less, and more preferably 15 nm or more and 110 nm or less. The average particle size of the non-magnetic powder in back layer 14 is determined in the same manner as the average particle size of the magnetic powder in magnetic layer 13. The non-magnetic powder may contain powder having two or more particle size distributions.

[0061] The upper limit of the average thickness of the back layer 14 is preferably 0.6 μm or less, and particularly preferably 0.5 μm or less. If the upper limit of the average thickness of the back layer 14 is 0.6 μm or less, the thickness of the underlayer 12 and the substrate 11 can be kept thick even when the average thickness of the magnetic recording tape 10 is 5.3 μm or less, thereby maintaining running stability of the magnetic recording tape 10 within a recording and reproducing device. The lower limit of the average thickness of the back layer 14 is not particularly limited, but is, for example, 0.2 μm or more, and particularly preferably 0.3 μm or more.

[0062] The average thickness of the back layer 14 is determined as follows. First, a ½-inch wide magnetic recording tape 10 is prepared and cut into a length of 250 mm to prepare a sample. Next, using a Mitutoyo Laser Hologram (LGH-110C) as a measuring device, the thickness of the sample magnetic recording tape 10 is measured at five or more points, and the measured values ​​are simply averaged (arithmetic mean) to calculate the average thickness tT [μm] of the magnetic recording tape 10. Note that the measurement positions are selected randomly from the sample. Next, the back layer 14 is removed from the sample magnetic recording tape 10 using a solvent such as MEK (methyl ethyl ketone) or dilute hydrochloric acid. Thereafter, using the above-mentioned Laser Hologram again, the thickness of the sample from which the back layer 14 has been removed is measured at five or more points, and the measured values ​​are simply averaged (arithmetic mean) to calculate the average thickness tB [μm] of the magnetic recording tape 10 from which the back layer 14 has been removed. Note that the measurement positions are selected randomly from the sample. Finally, the average thickness tb [μm] of the back layer 14 is calculated using the following formula. tb[μm]=tT[μm]-tB[μm]

[0063] (Average thickness of magnetic recording tape 10) The upper limit of the average thickness (average total thickness) T10 of the magnetic recording tape 10 is preferably 5.6 μm or less, and more preferably 5.3 μm or less. When the average thickness of the magnetic recording tape 10 is 5.6 μm or less, the recording capacity that can be recorded on one magnetic recording cartridge 1 can be increased compared to general magnetic recording media. Furthermore, the lower limit of the average thickness of the magnetic recording tape 10 is preferably 4.0 μm or more, for example. When the average thickness of the magnetic recording tape 10 is 4.0 μm or more, deformation of the magnetic recording tape 10 can be effectively suppressed.

[0064] The average thickness T10 of the magnetic recording tape 10 is determined as follows. First, a 1 / 2-inch wide magnetic recording tape 10 is prepared and cut into 250 mm lengths to prepare measurement samples. The same number of measurement samples for measuring the average thickness T10 are taken from the vicinity of the measurement samples taken when measuring the Young's modulus in the longitudinal direction. Next, using a Mitutoyo Laser Hologram (LGH-110C) as the measurement device, the thickness of the sample is measured at five or more positions, and the measured values ​​are simply averaged (arithmetic mean) to calculate the average value [μm]. This average value is the average thickness T10 of the magnetic recording tape 10. The measurement positions are selected randomly from the sample.

[0065] (Coercive force Hc) The upper limit of the longitudinal coercive force Hc of the magnetic recording tape 10 is preferably 2000 Oe or less, more preferably 1900 Oe or less, and even more preferably 1800 Oe or less. If the longitudinal coercive force Hc2 is 2000 Oe or less, the magnetization reacts sensitively to the perpendicular magnetic field from the magnetic head, allowing for the formation of a good recording pattern.

[0066] The lower limit of the coercive force Hc measured in the longitudinal direction of the magnetic recording tape 10 is preferably 1000 Oe or more. If the lower limit of the coercive force Hc in the longitudinal direction is 1000 Oe or more, demagnetization due to leakage flux from the recording head can be suppressed.

[0067] The coercive force Hc is determined as follows. Three sheets of magnetic recording tape 10 are stacked and adhered with double-sided tape, and then punched out with a φ6.39 mm punch to create a measurement sample. At this time, markings are made with any nonmagnetic ink so that the longitudinal direction (running direction) of the magnetic recording tape 10 can be identified. Then, using a vibrating sample magnetometer (VSM), the MH loop of the measurement sample (the entire magnetic recording tape 10) corresponding to the longitudinal direction (running direction of the magnetic recording tape 10) of the magnetic recording tape 10 is measured. Next, the coating film (underlayer 12, magnetic layer 13, back layer 14, etc.) is wiped off with acetone or ethanol, leaving only the substrate 11. Three sheets of the obtained substrate 11 are then stacked and adhered with double-sided tape, and then punched out with a φ6.39 mm punch to obtain a sample for background correction (hereinafter simply referred to as the correction sample). After that, the VSM is used to measure the MH loop of the correction sample (substrate 11) corresponding to the longitudinal direction of the substrate 11 (the running direction of the magnetic recording tape 10). When determining the coercivity Hc of the magnetic recording tape 10 in the longitudinal direction, the measurement sample and correction sample are taken from three different locations along the longitudinal direction of the magnetic recording medium TM housed in the magnetic recording cartridge 1. Specifically, the measurement sample and correction sample are taken from the magnetic recording tape 10 of the magnetic recording medium TM at three locations: 10 m from the connection portion 4 connected to the leader tape 20, 30 m from the connection portion 4, and 60 m from the connection portion 4. The coercivity Hc of the magnetic recording tape 10 in the longitudinal direction is determined by calculating the arithmetic mean of the coercivity Hc determined from the MH loops measured for the measurement sample and correction sample obtained at each of the three locations.

[0068] To measure the MH loop of the measurement sample (the entire magnetic recording tape 10) and the MH loop of the correction sample (substrate 11), a high-sensitivity vibration sample magnetometer "VSM-P7-15" manufactured by Toei Kogyo Co., Ltd. is used. The measurement conditions are as follows: measurement mode: full loop, maximum magnetic field: 15 kOe, magnetic field step: 40 bits, time constant of locking amp: 0.3 sec, waiting time: 1 sec, number of MH averages: 20.

[0069] After obtaining the two M-H loops, background correction is performed by subtracting the M-H loop of the correction sample (substrate 11) from the M-H loop of the measurement sample (entire magnetic recording tape 10), thereby obtaining the M-H loop after background correction. This background correction calculation is performed using the measurement and analysis program included with the "VSMP7-15 model."

[0070] The coercive force Hc is calculated from the obtained MH loop after background correction. Note that this calculation uses the measurement and analysis program attached to the "VSM-P7-15 model." Note that all of the above MH loop measurements are performed at 25°C. Furthermore, "demagnetizing field correction" is not performed when measuring the MH loop in the longitudinal direction of the magnetic recording tape 10.

[0071] (Square ratio) The squareness ratio S1 in the perpendicular direction (thickness direction) of the magnetic recording tape 10 is, for example, 65% or more, preferably 67% or more, more preferably 70% or more, even more preferably 75% or more, and particularly preferably 80% or more. When the squareness ratio S1 is 65% or more, the perpendicular orientation of the magnetic powder is sufficiently high, and therefore a better SNR can be obtained.

[0072] The squareness ratio S1 is calculated from the same MH loop as that used to calculate the coercive force Hc described above. That is, the squareness ratio S1 is calculated by measuring the MH loop in the same manner as that used to calculate the coercive force Hc described above.

[0073] The saturation magnetization Ms (emu) and remanent magnetization Mr (emu) of the MH loop after background correction obtained when calculating the coercive force Hc above are substituted into the following equation to calculate the squareness ratio S1 (%). Squareness ratio S1(%)=(Mr / Ms)×100 It should be noted that all of the above MH loop measurements are performed at 25° C. Furthermore, when measuring the MH loop in the perpendicular direction to the magnetic recording tape 10, "demagnetizing field correction" is not performed.

[0074] The squareness ratio S2 in the longitudinal direction (running direction) of the magnetic recording tape 10 is preferably 35% or less, more preferably 30% or less, even more preferably 25% or less, particularly preferably 20% or less, and most preferably 15% or less. When the squareness ratio S2 is 35% or less, the magnetic powder has a sufficiently high perpendicular orientation, thereby achieving a better SNR.

[0075] The squareness ratio S2 is determined in the same manner as the squareness ratio S1, except that the MH loop is measured in the longitudinal direction (running direction) of the magnetic recording tape 10 and the substrate 11.

[0076] (SFD) In the SFD (Switching Field Distribution) curve of the magnetic recording tape 10, the peak ratio X / Y, where X is the main peak height and Y is the sub-peak height near zero magnetic field, is preferably 3.0 or greater, more preferably 5.0 or greater, even more preferably 7.0 or greater, particularly preferably 10.0 or greater, and most preferably 20.0 or greater (see FIG. 4). FIG. 4 is a graph showing an example of the SFD curve of the magnetic recording tape 10 shown in FIG. 2. A peak ratio X / Y of 3.0 or greater can prevent the magnetic powder from containing large amounts of low-coercivity components specific to ε-iron oxide (e.g., soft magnetic particles, superparamagnetic particles, etc.) in addition to the ε-iron oxide particles 50 that contribute to actual recording. This prevents the leakage magnetic field from the recording head from degrading the magnetization signal recorded on adjacent tracks, resulting in a better SNR. The upper limit of the peak ratio X / Y is not particularly limited, but is, for example, 100 or less.

[0077] The peak ratio X / Y is calculated as follows. First, an MH loop after background correction is obtained using the same method as in the above-mentioned method for measuring coercive force Hc. Next, an SFD curve is calculated from the obtained MH loop. The SFD curve can be calculated using a program provided with the measuring instrument, or other programs. The absolute value of the point where the calculated SFD curve crosses the Y axis (dM / dH) is defined as "Y," and the height of the main peak observed in the MH loop near the coercive force Hc is defined as "X," and the peak ratio X / Y is calculated. Note that the MH loop is measured at 25°C, as in the above-mentioned method for measuring coercive force Hc. Furthermore, when measuring the MH loop in the thickness direction (perpendicular direction) of the magnetic recording tape 10, "demagnetization field correction" is not performed. Furthermore, the MH loop can be measured by stacking multiple samples to be measured depending on the sensitivity of the VSM used.

[0078] (dimensional change Δw) The amount of dimensional change Δw [ppm / N] in the width direction of the magnetic recording tape 10 in response to a change in tension in the longitudinal direction of the magnetic recording tape 10 is preferably 650 ppm / N≦Δw, more preferably 700 ppm / N≦Δw, even more preferably 750 ppm / N≦Δw, and particularly preferably 800 ppm / N≦Δw. When the amount of dimensional change Δw is 650 ppm / N≦Δw, changes in the width of the magnetic recording tape 10 can be more effectively suppressed by adjusting the tension in the longitudinal direction of the magnetic recording medium 10 using a recording / reproducing device 30, which will be described later. The upper limit of the dimensional change Δw is not particularly limited, but can be, for example, Δw≦1,700,000 ppm / N, preferably Δw≦20,000 ppm / N, more preferably Δw≦8,000 ppm / N, even more preferably Δw≦5,000 ppm / N, Δw≦4,000 ppm / N, Δw≦3,000 ppm / N, or Δw≦2,000 ppm / N.

[0079] The dimensional change Δw can be set to a desired value by selecting the substrate 11. For example, the dimensional change Δw can be set to a desired value by selecting at least one of the thickness of the substrate 11 and the material of the substrate 11. The dimensional change Δw may also be set to a desired value by adjusting the stretching strength of the substrate 11 in the width direction and the longitudinal direction. For example, by stretching the substrate 11 more strongly in the width direction, the dimensional change Δw decreases, and conversely, by strengthening the stretching of the substrate 11 in the longitudinal direction, the dimensional change Δw increases.

[0080] The dimensional change Δw is calculated as follows. First, a magnetic recording medium 10 having a width of 1 / 2 inch is prepared and cut into a length of 250 mm to obtain a sample 10S. Next, loads of 0.2 N, 0.6 N, and 1.0 N are applied in that order along the length of the sample 10S, and the width of the sample 10S is measured at loads of 0.2 N, 0.6 N, and 1.0 N. Next, the dimensional change Δw is calculated using the following formula. Note that the measurement when a load of 0.6 N is applied is performed to check for any abnormalities in the measurement (especially to check that the results of these three measurements are linear), and the measurement result is not used in the following formula.

number

[0081] The width of the sample 10S when each load is applied is measured using, for example, the measuring device shown in Fig. 5. Fig. 5 is a schematic diagram showing the appearance of a measuring device 210 used to measure the width of the magnetic recording medium 10. First, the measuring device 210 will be described with reference to Fig. 5. The measuring device 210 includes a base 211, a support column 212, a light emitter 213, a light receiver 214, a support plate 215, five support members 216A to 216E, and a fixing portion 217.

[0082] Base 211 has a rectangular plate shape. Light receiver 214 is provided in the center of base 211. Support pillar 212 is erected adjacent to light receiver 214 at a position shifted from the center of base 211 toward one long side. Fixing portion 217 is provided on one short side of base 211.

[0083] Light emitter 213 is supported at the tip of support column 212. Light emitter 213 and light receiver 214 face each other. During measurement, sample 10S supported by support members 216A to 216E is placed between the opposing light emitter 213 and light receiver 214. Light emitter 213 and light receiver 214 are connected to a PC (personal computer), and under the control of this PC, the width of sample 10S supported by support members 216A to 216E is measured and the measurement results are output to the PC.

[0084] A digital dimension measuring instrument LS-7000 manufactured by Keyence Corporation is incorporated into the light emitter 213 and the light receiver 214. The light emitter 213 irradiates the sample 10S supported by the support members 216A to 216E with linear light parallel to the width direction of the sample 10S. The light receiver 214 measures the width of the sample 10S by measuring the amount of light that is not blocked by the sample 10S.

[0085] A long, narrow rectangular support plate 215 is fixed at approximately half the height of the support column 212. The support plate 215 is supported so that its long sides are parallel to the main surface of the base 211. Five support members 216A to 216E are supported on one main surface of the support plate 215. The support members 216A to 216E have a cylindrical rod shape and support the back surface of the sample 10S (magnetic recording medium 10). All five support members 216A to 216E (especially their surfaces) are made of stainless steel SUS304, and their surface roughness Rz (maximum height) is 0.15 μm to 0.3 μm.

[0086] Here, the arrangement of the five support members 216A to 216E will be described with reference to FIG. 5. As shown in FIG. 6, the sample 10S is placed on the five support members 216A to 216E. The diameter of each of the five support members 216A to 216E is, for example, 7 mm. The distance d1 between support member 216A and support member 216B (particularly the distance between the central axes of these support members) is 20 mm. The distance d2 between support member 216B and support member 216C is 30 mm. The distance d3 between support member 216C and support member 216D is 30 mm. The distance d4 between support member 216D and support member 216E is 20 mm.

[0087] Furthermore, the three support members 216B to 216D are arranged so that the portions of the sample 10S resting between support members 216B, 216C, and 216D form a plane that is approximately perpendicular to the direction of gravity. Furthermore, support members 216A and 216B are arranged so that the sample 10S forms an angle of θ1 = 30° with respect to the approximately perpendicular plane between support members 216A and 216B. Furthermore, support members 216D and 216E are arranged so that the sample 10S forms an angle of θ2 = 30° with respect to the approximately perpendicular plane between support members 216D and 216E. Furthermore, of the five support members 216A to 216E, support member 216C is fixed so as not to rotate, but the other four support members 216A, 216B, 216D, and 216E are all rotatable.

[0088] Of support members 216A to 216E, support member 216C is located between light emitter 213 and light receiver 214 and is located approximately in the center between fixed portion 217 and the portion where a load is applied, and is provided with slit 216S. Light L is irradiated from light emitter 213 to light receiver 214 through slit 216S. The slit width of slit 216S is 1 mm, and light L can pass through slit 216S without being blocked by the frame of slit 216S.

[0089] When measuring the width of the sample 10S when each load is applied using the measuring device 210, first, the sample 10S is set in the measuring device 210. Specifically, one end of the long sample 10S is fixed by a fixing part 217. Next, the sample 10S is placed on five support members 216A to 216E. At this time, the back surface of the sample 10S is placed in contact with the five support members 216A to 216E.

[0090] Next, the measurement device 210 is placed in a chamber controlled to a constant temperature of 25°C and relative humidity of 50%, and a weight 233 for applying a 0.2 N load is attached to the other end of the sample 10S. The sample 10S is then kept in the above environment for at least two hours to allow the sample 10S to acclimate to the environment. After the two-hour storage period, the width of the sample 10S is measured. Specifically, with the 0.2 N load 218 attached, light L is irradiated from the light emitter 213 to the light receiver 214, and the width of the sample 10S with the load applied in the longitudinal direction is measured. This width measurement is performed when the sample 10S is not curled. Next, the weight for applying the 0.2 N load is changed to a weight for applying a 0.6 N load, and the width of the sample 10S is measured five minutes after the change. Finally, the weight for applying a 1.0 N load is changed to a weight for applying a 1.0 N load, and the width of the sample 10S is measured five minutes after the change.

[0091] (Temperature expansion coefficient α) The temperature expansion coefficient α of the magnetic recording tape 10 preferably satisfies the following relationship: 3 [ppm / °C]≦α≦10 [ppm / °C]. When the temperature expansion coefficient α is within the above range, changes in the width of the magnetic recording tape 10 can be suppressed by adjusting the longitudinal tension of the magnetic recording tape 10 using a recording / reproducing device 30, which will be described later.

[0092] The temperature expansion coefficient α is calculated as follows. First, a sample 10S is prepared in the same manner as in the measurement of the dimensional change Δw, and the sample 10S is placed in the same measuring device 210 as in the measurement of the dimensional change Δw. Then, for example, to measure the temperature expansion coefficient α under a relative humidity environment of 10% RH, the measuring device 210 containing the sample 10S is placed in a chamber controlled to a constant temperature of 29°C and a relative humidity of 10%. Next, a load of 0.2 N is applied to the sample 10S in the longitudinal direction, and the sample 10S is kept in this environment for at least two hours to allow it to acclimate. Then, while maintaining the relative humidity at 10%, the temperature is changed in the order of 45°C, 29°C, and 10°C. The width of the sample 10S at 45°C and 10°C is measured, and the temperature expansion coefficient α is calculated using the following formula. The width measurement of the sample 10S at 29°C is performed to check for any abnormalities in the measurement (especially to confirm that the results of these three measurements are linear), and the measurement result is not used in the following formula.

number

[0093] (humidity expansion coefficient β) The humidity expansion coefficient β of the magnetic recording tape 10 is preferably β≦5 [ppm / % RH]. When the humidity expansion coefficient β is in the above range, the recording / reproducing device 30 can adjust the tension of the magnetic recording tape 10 in the longitudinal direction, thereby further suppressing changes in the width of the magnetic recording tape 10.

[0094] The humidity expansion coefficient β is calculated as follows. First, a sample 10S is prepared in the same manner as in the measurement of the dimensional change Δw, and the sample 10S is placed in the same measuring device 210 as in the measurement of the dimensional change Δw. Then, for example, to measure the humidity expansion coefficient β at a temperature of 10°C, the measuring device 210 containing the sample 10S is placed in a chamber controlled to a constant temperature of 10°C and a relative humidity of 24%. Next, a load of 0.2 N is applied to the sample 10S in the longitudinal direction, and the sample 10S is kept in this environment for at least two hours to allow it to acclimate. Then, while maintaining the temperature at 10°C, the relative humidity is changed in the order of 80%, 24%, and 10%, and the width of the sample 10S at 80% and 10% is measured, and the humidity expansion coefficient β is calculated using the following formula. The width measurement of the sample 10S at 24% humidity is performed to check for any abnormalities in the measurement (especially to confirm that the results of these three measurements are linear), and the measurement result is not used in the following formula.

number

[0095] (Leader tape 20) FIG. 6 schematically illustrates an example cross-sectional configuration of a leader tape 20. As shown in FIG. 6, the leader tape 20, like the magnetic recording tape 10, has a laminated structure in which multiple layers are stacked. Specifically, the leader tape 20 includes a long, tape-shaped substrate 21, an underlayer 22 provided on the main surface 21A of the substrate 21, a magnetic layer 23 provided on the underlayer 22, and a back layer 24 provided on the main surface 21B of the substrate 21 opposite the main surface 21A. When the magnetic recording medium TM runs, the surface of the magnetic head slides over the surface 23S of the magnetic layer 23. Note that the underlayer 22 and the back layer 24 are provided as needed and are not required. Note that data is not recorded on the magnetic layer 23 of the leader tape 20. However, since the leader tape 20 has the magnetic layer 23, it is possible to pre-record an identification signal in the magnetic layer 23 that can identify the leader tape 20. This can prevent, for example, erroneous data recording on the leader tape 20. Furthermore, because leader tape 20 has a structure in which multiple layers, such as underlayer 22 and magnetic layer 23, are laminated on substrate 21, it has a friction coefficient that is more suitable for running than if it were made of only substrate 21. This allows leader tape 20 to run more smoothly.

[0096] The configurations of the substrate 21, underlayer 22, magnetic layer 23, and back layer 24 of the leader tape 20 can be substantially the same as the configurations of the substrate 11, underlayer 12, magnetic layer 13, and back layer 14 of the magnetic recording tape 10 described above, respectively. However, the configurations of the substrate 21, underlayer 22, magnetic layer 23, and back layer 24 of the leader tape 20 may be different from the configurations of the substrate 11, underlayer 12, magnetic layer 13, and back layer 14 of the magnetic recording tape 10, respectively. For example, even if the underlayer 12 of the magnetic recording tape 10 uses an acicular inorganic material, the underlayer 22 of the leader tape 20 may use an inorganic material other than an acicular inorganic material.

[0097] (Average thickness of leader tape 20) The average thickness (average total thickness) T20 of the leader tape 20 is, for example, 5.0 μm or more and 18.0 μm or less. The average thickness T20 is thicker than the average thickness T10 of the magnetic recording tape 10. The difference between the average thickness T20 of the leader tape 20 and the average thickness T10 of the magnetic recording tape 10 is, for example, 12 μm or less. The thickness of the substrate 21 is, for example, 3.0 μm or more and 15.0 μm or less. The thickness of the underlayer 22 is 0.6 μm or more and 3.0 μm or less. The thickness of the magnetic layer 23 is 0.05 μm or more and 0.30 μm or less. The thickness of the back layer 24 is 0.2 μm or more and 1.0 μm or less.

[0098] The average thickness T20 of the leader tape 20 is determined, for example, by the same method as the average thickness T10 of the magnetic recording tape 10. Note that the same number of measurement samples for measuring the average thickness T20 are taken from the vicinity of the measurement samples taken when measuring the Young's modulus in the longitudinal direction.

[0099] The leader tape 20 is connected to the magnetic recording tape 10 by a splicing tape 60, as shown in, for example, Figures 7A and 7B. Figure 7A is a schematic plan view showing an enlarged portion of the leader tape 20 and the magnetic recording tape 10. Figure 7B is a schematic cross-sectional view showing an enlarged portion of the leader tape 20 and the magnetic recording tape 10. The splicing tape 60 is provided at the connection portion 4 (Figure 1) between the leader tape 20 and the magnetic recording tape 10. The splicing tape 60 is adhered to both the end 20E of the leader tape 20 and the starting end 10S of the magnetic recording tape 10. As shown in Figure 7B, the splicing tape 60 has a thickness T60. The average thickness T60 is, for example, not less than 5 µm and not more than 24 µm.

[0100] The splicing tape 60 has, for example, a base material 61 and an adhesive layer 62 provided on the surface of the base material 61. The base material 61 is made of, for example, the same material as the material of the substrate 11 of the magnetic recording tape 10 described above. The base material 61 is, for example, a polyester film. The thickness of the base material 61 is, for example, 16.0 μm. The adhesive layer 62 can be made of, for example, a pressure-sensitive adhesive. The thickness of the adhesive layer 62 is, for example, 6.0 μm.

[0101] As the magnetic recording medium TM is repeatedly run under certain conditions, multiple step portions 20U are formed on the leader tape 20, scattered along the longitudinal direction of the magnetic recording medium TM. The "certain conditions" referred to here are conditions in which, in a recording / reproducing device 30 (described later), the tape is run 140 times back and forth over its entire length between the cartridge reel 3 and the take-up reel 32 in an environment of, for example, a temperature of 25°C and a relative humidity of 45%RH, in accordance with the LTO9 standard. The maximum running speed during this run is 8 m / min. Of the multiple step portions 20U formed on the leader tape 20 as a result of running under such certain conditions, the step portion 20U closest to the connection portion 4 between the leader tape 20 and the magnetic recording tape 10 has a maximum step difference ΔT of 34 μm or less in the thickness direction of the leader tape 20. Note that FIGS. 7A and 7B only show the step portion 20U closest to the connection portion 4 out of the multiple step portions 20U. Here, the maximum step difference ΔT refers to the difference between the highest point P1 in the thickness direction and the lowest point P2 in the thickness direction among the unevenness on the surface of the leader tape 20, which is the step portion 20U, as shown in Figure 8. In other words, it refers to the maximum range of variation in the thickness direction of the leader tape 20. Note that Figure 8 is an explanatory diagram that schematically shows the uneven shape of the surface of the leader tape 20 that occurs when the leader tape 20 is run under the above-mentioned constant conditions. Note that when running in accordance with the LTO9 standard, a tension of, for example, 0.4 N to 1.3 N, typically about 0.8 N, is applied to the magnetic recording medium TM.

[0102] As shown in FIG. 9, the multiple step portions 20U are caused by a step 73 between the core 71 and leader block 72 of the take-up reel 32. Therefore, the multiple step portions 20U are located at intervals in the longitudinal direction that correspond to an integral multiple of the outer diameter of the core 71 (described later) of the take-up reel 32. FIG. 9 is a schematic diagram showing an enlarged portion of the take-up reel 32. The core 71 is a member around which the magnetic recording medium TM is wound. The core 71 is provided with a recess 71U into which the leader block 72 fits. The leader block 72 is configured to be able to fit into the recess 71U. By fitting into the recess 71U, the leader block 72 clamps the leader pin 20P of the leader tape 20 between itself and the core 71. When the leader block 72 fits into the recess 71U, a surface 72S of the leader block 72 and an outer surface 71S of the core 71 form the outer circumferential surface of a substantially cylindrical cylinder. However, a step 73 occurs between a portion of the surface 72S of the leader block 72 and the outer surface 71S of the core 71. When the magnetic recording medium TM is wound around the take-up reel 32, this step 73 may be transferred to the leader tape 20 and, ultimately, to the magnetic recording tape 10. Such transfer to the magnetic recording tape 10 can easily interfere with maintaining an appropriate distance from the recording / reproducing head during the information recording or reproducing process, potentially resulting in recording failure or information loss. Therefore, in this disclosure, the average thickness T20 of the leader tape 20, the length of the leader tape 20, and the layer structure of the leader tape 20 are appropriately adjusted to ensure that the maximum step ΔT of the step portion 20U closest to the splice portion 4 is 34 μm or less. Note that the maximum step ΔT is not determined solely by the average thickness T20 of the leader tape 20 and the length of the leader tape 20, but is a parameter determined by adjusting the materials and thicknesses of each layer that constitutes the leader tape 20, such as the substrate 21, underlayer 22, magnetic layer 23, and back layer 24. Of the multiple step portions 20U that occur on the leader tape 20, the step portion 20U that is closest to the connection portion 4 has a maximum step difference ΔT of 34 μm or less, thereby ensuring good recording and playback operations and improving operational reliability.

[0103] [1-3.Measuring method for the maximum step difference ΔT of the leader tape 20] (Measuring equipment and its measurement conditions) Next, a method for measuring the maximum step difference ΔT that can occur in the leader tape 20 will be described. As described above, the leader tape 20 is collected from a magnetic recording medium TM that has been run 140 times back and forth between the cartridge reel 3 and the take-up reel 32 in the recording / playback device 30 in accordance with the LTO9 standard. A digital microscope manufactured by Keyence Corporation can be used as a measuring device to measure the maximum step difference ΔT. The digital microscope includes a main body, a head, and a lens. The model names and measurement conditions are exemplified below. Main unit: VHX-7000 Head: VHX-7100 Lens: VHX-E20 (magnification 20-100x) Lens magnification: 100x Shooting mode: Standard Saved pixel size: 1200 x 9000 pixels Shooting pitch: 4.00 μm

[0104] (Measurement preparation) A sample of leader tape 20 is placed on stage S of the measuring machine so that step portion 20U of leader tape 20 to be measured falls within the angle of view of the lens. As shown in Figure 10, the first end T1 of the leader tape 20 sample in the longitudinal direction is fixed on the stage, and then a second end T2 opposite to first end T1 is placed so that it is pulled with a 50 g load. A 20 g weight W is then placed on the sample of leader tape 20 on stage S to prevent the sample of leader tape 20 from floating above the surface of stage S.

[0105] (Measurement procedure) After placing a sample of leader tape 20 on stage S, the object is displayed on the monitor of the measuring instrument, and the lens brightness and focus are adjusted. Next, the lens magnification is set to 100x. Then, "Depth Up" and "Quick Composite & 3D" are selected from the menu. Next, the upper and lower movement limits in the Z direction are determined. The Z direction is the thickness direction of the magnetic recording medium TM. Specifically, the lower focus limit is determined while observing the step portion 20U to be observed. Then, the upper focus limit is determined while observing the step portion 20U. Next, the shooting pitch in the Z direction is set to 4.00 μm, and this is input into the measuring instrument. Finally, "Execute Composite" is selected from the menu. This creates a 3D composite image of the area around step portion 20U.

[0106] (Read the results) After creating a 3D composite image of the vicinity of the step portion 20U, select "3D display" and "profile" in turn on the monitor screen. Next, select "profile line" and "between two points" in turn on the monitor screen to measure the undulations of the step portion 20U of the sample of the leader tape 20. At this time, set the "profile line" to pass through the step portion 20U. Then, select "measurement tool" and "max / min" in turn. Furthermore, read the value displayed on the monitor screen as the maximum step ΔT.

[0107] In this way, the maximum step difference ΔT of the leader tape 20 can be measured.

[0108] [1-4. Manufacturing Method of Magnetic Recording Medium TM] Next, a method for manufacturing the magnetic recording tape 10 having the above-described configuration will be described. First, a base layer-forming paint is prepared by kneading and dispersing non-magnetic powder, binder, lubricant, etc. in a solvent. Next, a magnetic layer-forming paint is prepared by kneading and dispersing magnetic powder, binder, lubricant, etc. in a solvent. Next, a back layer-forming paint is prepared by kneading and dispersing binder, non-magnetic powder, etc. in a solvent. The following solvents, dispersing devices, and kneading devices can be used, for example, to prepare the magnetic layer-forming paint, base layer-forming paint, and back layer-forming paint.

[0109] Examples of solvents that can be used in preparing the coating material include ketone solvents such as acetone, methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone, alcohol solvents such as methanol, ethanol, and propanol, ester solvents such as methyl acetate, ethyl acetate, butyl acetate, propyl acetate, ethyl lactate, and ethylene glycol acetate, ether solvents such as diethylene glycol dimethyl ether, 2-ethoxyethanol, tetrahydrofuran, and dioxane, aromatic hydrocarbon solvents such as benzene, toluene, and xylene, and halogenated hydrocarbon solvents such as methylene chloride, ethylene chloride, carbon tetrachloride, chloroform, and chlorobenzene. These may be used alone or in appropriate combinations.

[0110] Examples of kneading devices that can be used in preparing the above-mentioned coating materials include, but are not limited to, continuous twin-screw kneaders, continuous twin-screw kneaders capable of multi-stage dilution, kneaders, pressure kneaders, roll kneaders, etc. Furthermore, examples of dispersing devices that can be used in preparing the above-mentioned coating materials include, but are not limited to, roll mills, ball mills, horizontal sand mills, vertical sand mills, spike mills, pin mills, tower mills, pearl mills (e.g., the "DCP Mill" manufactured by Eirich), homogenizers, ultrasonic dispersers, etc.

[0111] Next, a base layer forming paint is applied to one main surface 11A of the substrate 11 and dried to form the base layer 12. Subsequently, a magnetic layer forming paint is applied to the base layer 12 and dried to form the magnetic layer 13 on the base layer 12. During drying, it is preferable to magnetically orient the magnetic powder in the thickness direction of the substrate 11, for example, using a solenoid coil. Alternatively, during drying, the magnetic powder may be magnetically oriented in the running direction (longitudinal direction) of the substrate 11, for example, using a solenoid coil, and then magnetically oriented in the thickness direction of the substrate 11. Such magnetic field orientation treatment can improve the degree of perpendicular orientation of the magnetic powder (i.e., squareness ratio S1). After the magnetic layer 13 is formed, a back layer forming paint is applied to the other main surface 11B of the substrate 11 and dried to form the back layer 14. This results in a magnetic recording tape 10.

[0112] The squareness ratios S1 and S2 can be set to desired values ​​by, for example, adjusting the strength of the magnetic field applied to the coating film of the magnetic layer-forming paint, the concentration of solids in the magnetic layer-forming paint, and the drying conditions (drying temperature and drying time) of the coating film of the magnetic layer-forming paint. The strength of the magnetic field applied to the coating film is preferably at least twice the coercive force of the magnetic powder. To further increase the squareness ratio S1 (i.e., to further reduce the squareness ratio S2), it is preferable to improve the dispersion state of the magnetic powder in the magnetic layer-forming paint. To further increase the squareness ratio S1, it is also effective to magnetize the magnetic powder before the magnetic layer-forming paint enters an orientation device that magnetically orients the magnetic powder. The above methods for adjusting the squareness ratios S1 and S2 may be used alone or in combination.

[0113] The resulting magnetic recording tape 10 is then subjected to a calendering process to smooth the surface 13S of the magnetic layer 13. Next, the calendered magnetic recording tape 10 is wound into a roll.

[0114] Finally, the magnetic recording tape 10 is cut to a predetermined width (for example, 1 / 2 inch width). In this manner, the desired magnetic recording tape 10 is obtained.

[0115] The leader tape 20 can be manufactured in the same manner as the magnetic recording tape 10 described above.

[0116] The magnetic recording medium TM is completed by splicing the magnetic recording tape 10 obtained as described above with a leader tape 20.

[0117] [1-5. Recording / playback device 30] (Configuration of recording / playback device 30) Next, the configuration of a recording / reproducing device 30 that records information on the above-mentioned magnetic recording medium TM and reproduces information from the above-mentioned magnetic recording medium TM will be described with reference to Fig. 11. The recording / reproducing device 30 is a drive that complies with the LTO9 standard.

[0118] The recording / reproducing device 30 is configured to adjust the tension applied to the magnetic recording medium TM in the longitudinal direction. The recording / reproducing device 30 is also configured to accept a magnetic recording cartridge 1. For ease of explanation, the recording / reproducing device 30 is described as being configured to accept one magnetic recording cartridge 1. However, in the present disclosure, the recording / reproducing device 30 may be configured to accept multiple magnetic recording cartridges 1. As described above, the magnetic recording medium TM is tape-shaped. The magnetic recording medium TM may be housed in a housing, for example, wound around a cartridge reel 3 inside the magnetic recording cartridge 1. The magnetic recording medium TM runs in the longitudinal direction during recording and reproduction. The magnetic recording medium TM may be configured to record signals at a shortest recording wavelength of preferably 100 nm or less, more preferably 75 nm or less, even more preferably 60 nm or less, and particularly preferably 50 nm or less. For example, the magnetic recording medium TM may be used in a recording / reproducing device 30 whose shortest recording wavelength is within the above range. The recording track width may be, for example, 2 μm or less.

[0119] The recording / playback device 30 is connected to information processing devices such as a server 41 and a personal computer (hereinafter referred to as "PC") 42 via a network 43, and is configured to be able to record data supplied from these information processing devices onto the magnetic recording medium cartridge 1.

[0120] As shown in FIG. 11, the recording / playback device 30 includes a spindle 31, a take-up reel 32, a drive unit 33, a drive unit 34, a plurality of guide rollers 35, a head unit 36, a communication interface (hereinafter referred to as I / F) 37, and a control device 38.

[0121] The spindle 31 is configured to be able to mount, for example, a magnetic recording cartridge 1. The magnetic recording cartridge 1 conforms to the LTO (Linear Tape Open) standard, and rotatably houses a single cartridge reel 3 around which a magnetic recording medium TM is wound in a cartridge case 2. A V-shaped servo pattern is pre-recorded on the magnetic recording medium TM as a servo signal. The take-up reel 32 is configured to be able to fix the tip of the magnetic recording medium TM pulled out from the magnetic recording cartridge 1, i.e., the leader pin 20P of the leader tape 20.

[0122] The drive unit 33 is a device that rotates the spindle 31. The drive unit 34 is a device that rotates the take-up reel 32. When recording or reproducing data on the magnetic recording medium TM, the drive units 33 and 34 rotate the spindle 31 and the take-up reel 32, respectively, thereby causing the magnetic recording medium TM to run. The guide roller 35 is a roller that guides the running of the magnetic recording medium TM.

[0123] The head unit 36 ​​includes a plurality of recording heads for recording data signals on the magnetic recording medium TM, a plurality of reproducing heads for reproducing the data signals recorded on the magnetic recording medium TM, and a plurality of servo heads for reproducing the servo signals recorded on the magnetic recording medium TM. The recording heads may be, for example, ring-type heads, and the reproducing heads may be, for example, magnetoresistive magnetic heads, but the types of recording and reproducing heads are not limited to these.

[0124] The I / F 37 is for communicating with information processing devices such as a server 41 and a PC 42 , and is connected to a network 43 .

[0125] The control device 38 controls the entire recording / reproducing device 30. For example, in response to a request from the information processing device, such as the server 41 or the PC 42, the control device 38 records a data signal supplied from the information processing device onto the magnetic recording medium TM using the head unit 36. In addition, in response to a request from the information processing device, such as the server 41 or the PC 42, the control device 38 reproduces the data signal recorded on the magnetic recording medium 10 using the head unit 36, and supplies the reproduced data signal to the information processing device.

[0126] (Operation of recording / playback device)

[0127] Next, the operation of the recording / reproducing device 30 having the above configuration will be described.

[0128] First, the magnetic recording cartridge 1 is loaded into the recording / reproducing device 30, the tip of the leader tape 20 of the magnetic recording medium TM is pulled out and transported to the take-up reel 32 via multiple guide rollers 35 and a head unit 36, and the leader pin 20P at the tip of the leader tape 20 is attached to the take-up reel 32.

[0129] Next, when an operating unit (not shown) is operated, the spindle drive device 33 and the reel drive device 34 are driven under the control of the control device 38, and the spindle 31 and the take-up reel 32 are rotated in the same direction so that the magnetic recording medium 10 runs from the cartridge reel 3 toward the take-up reel 32. As a result, while the magnetic recording medium TM is wound onto the reel 32, the head unit 36 ​​records information onto the magnetic recording medium TM or reproduces information recorded on the magnetic recording medium TM.

[0130] When the magnetic recording medium TM is rewound onto the cartridge reel 3, the spindle 31 and the take-up reel 32 are rotated in the opposite direction to the above, causing the magnetic recording medium TM to run from the take-up reel 32 onto the cartridge reel 3. During this rewinding, the head unit 36 ​​also records information onto the magnetic recording medium TM or reproduces information recorded on the magnetic recording medium TM.

[0131] [1-6.Effects] As described above, in this embodiment, the magnetic recording medium TM includes a magnetic recording tape 10 extending in the longitudinal direction and a leader tape 20 connected to the magnetic recording tape 10 in the longitudinal direction. The leader tape 20 is adjusted so that the maximum step difference ΔT of the step portion 20U closest to the joint portion 4, among the multiple step portions 20U that occur when the magnetic recording medium TM is repeatedly run under certain conditions, is 34 μm or less. Therefore, even if the magnetic recording medium TM is stored wound on the take-up reel 32, i.e., even if the magnetic recording medium TM is pressed flat, it is possible to prevent the transfer of bends, dents, etc. to the surface of the magnetic recording medium TM. Alternatively, it is possible to reduce the transfer of bends, dents, etc. to the surface of the magnetic recording medium TM. Therefore, the operation of recording information to and reading information from the magnetic recording tape 10 can be performed smoothly without interference.

[0132] [1-7. Variations] (Variation 1) In the first embodiment described above, the ε-iron oxide particles 50 ( FIG. 3 ) having a two-layer shell portion 52 are exemplified. However, the magnetic recording medium of the present technology may also include ε-iron oxide particles 50A having a single-layer shell portion 53, as shown in FIG. 12 . The shell portion 53 in the ε-iron oxide particles 20A has a configuration similar to that of the first shell portion 52a. However, from the viewpoint of suppressing deterioration of characteristics, the ε-iron oxide particles 50 having the two-layer shell portion 52 described in the first embodiment are preferable to the ε-iron oxide particles 50A of Modification 1.

[0133] (Variation 2) In the magnetic recording medium TM according to the embodiment described above, the ε-iron oxide particles 50 have a core-shell structure. However, the ε-iron oxide particles may contain an additive instead of the core-shell structure, or may have a core-shell structure and contain an additive. In this case, a portion of the Fe in the ε-iron oxide particles is substituted with the additive. By including an additive in the ε-iron oxide particles, the coercivity Hc of the entire ε-iron oxide particles can be adjusted to a coercivity Hc suitable for recording, thereby improving ease of recording. The additive may include a metal element other than iron, preferably a trivalent metal element, and more preferably at least one of Al (aluminum), Ga (gallium), In (indium), Co (cobalt), Mn (manganese), Zr (zirconium), Hf (hafnium), Cs (cesium), Ti (titanium), Sm (samarium), Nd (neodymium), Pr (praseodymium), and Tb (terbium).

[0134] Specifically, the ε-iron oxide containing the additive is an ε-Fe2-xMxO3 crystal (where M is a metal element other than iron, preferably a trivalent metal element, more preferably at least one of Al, Ga, and In, and even more preferably at least one of Al and Ga. x is, for example, 0 <x<1である。)である。

[0135] (Variation 3) The magnetic powder of the present disclosure may contain a powder of nanoparticles containing hexagonal ferrite (hereinafter referred to as "hexagonal ferrite particles") instead of a powder of ε-iron oxide particles. The hexagonal ferrite particles have, for example, a hexagonal plate shape or a nearly hexagonal plate shape. The hexagonal ferrite preferably contains at least one of Ba (barium), Sr (strontium), Pb (lead), and Ca (calcium), more preferably at least one of Ba and Sr. Specifically, the hexagonal ferrite may be, for example, barium ferrite or strontium ferrite. Barium ferrite may further contain at least one of Sr, Pb, and Ca in addition to Ba. Strontium ferrite may further contain at least one of Ba, Pb, and Ca in addition to Sr.

[0136] More specifically, hexagonal ferrite has an average composition represented by the general formula MFe12O19. Here, M is, for example, at least one metal selected from Ba, Sr, Pb, and Ca, preferably at least one metal selected from Ba and Sr. M may be a combination of Ba and one or more metals selected from the group consisting of Sr, Pb, and Ca. M may also be a combination of Sr and one or more metals selected from the group consisting of Ba, Pb, and Ca. In the above general formula, a portion of Fe may be substituted with another metal element.

[0137] When the magnetic powder contains hexagonal ferrite particles, the average particle size of the magnetic powder is preferably 50 nm or less, more preferably 40 nm or less, and even more preferably 30 nm or less. The average particle size of the magnetic powder is preferably 25 nm or less, 22 nm or less, 21 nm or less, or even more preferably 20 nm or less. The average particle size of the magnetic powder is, for example, 10 nm or more, preferably 12 nm or more, and more preferably 15 nm or more. Therefore, the average particle size of the magnetic powder containing hexagonal ferrite particles can be, for example, 10 nm to 50 nm, 10 nm to 40 nm, 12 nm to 30 nm, 12 nm to 25 nm, or 15 nm to 22 nm. When the average particle size of the magnetic powder is below the upper limit (for example, 50 nm or less, particularly 30 nm or less), good electromagnetic conversion characteristics (e.g., SNR) can be obtained in a high-density magnetic recording medium TM. When the average particle size of the magnetic powder is equal to or greater than the lower limit (for example, 10 nm or greater, preferably 12 nm or greater), the dispersibility of the magnetic powder is further improved, and better electromagnetic conversion characteristics (for example, SNR) can be obtained.

[0138] When the magnetic powder includes a powder of hexagonal ferrite particles, the average aspect ratio of the magnetic powder is preferably 1 or more and 3.5 or less, more preferably 1 or more and 3.1 or less, or 2 or more and 3.1 or less, and even more preferably 2 or more and 3 or less. By having the average aspect ratio of the magnetic powder within the above numerical range, aggregation of the magnetic powder can be suppressed, and further, the resistance applied to the magnetic powder when the magnetic powder is vertically oriented in the process of forming the magnetic layer 13 can be suppressed. This can lead to improved vertical orientation of the magnetic powder.

[0139] The average particle size and average aspect ratio of magnetic powder containing hexagonal ferrite particles are determined as follows. First, the magnetic recording portion 10 to be measured is thinned using a method such as FIB (Focused Ion Beam). The thinning is performed along the length (longitudinal direction) of the magnetic recording portion 10. The obtained thinned sample is observed in cross section in the thickness direction of the recording layer using a transmission electron microscope (Hitachi High-Technologies H-9500) at an acceleration voltage of 200 kV and a total magnification of 500,000 times, so as to include the entire recording layer. Next, 50 particles with their sides facing the observation surface are selected from the TEM photograph, and the plate thickness DA of each particle is measured. The plate thicknesses DA thus determined are simply averaged (arithmetic mean) to determine the average plate thickness DAave. Next, the plate diameter DB of each magnetic powder is measured. Here, the plate diameter DB refers to the distance between two parallel lines drawn tangent to the outline of the magnetic powder. Next, the measured plate diameters DB are simply averaged (arithmetic averaged) to determine the average plate diameter DBave.Then, the average particle aspect ratio (DBave / DAave) is calculated from the average plate thickness DAave and the average plate diameter DBave.

[0140] When the magnetic powder comprises a powder of hexagonal ferrite particles, the average particle volume of the magnetic powder is preferably 400 nm 3 More than 1800nm 3 The average particle volume of the magnetic powder is 1800 nm or less. 3 When the average particle volume of the magnetic powder containing hexagonal ferrite particles is 1500 nm or less, it is possible to obtain good electromagnetic conversion characteristics (for example, SNR) required for the high recording density magnetic recording portion 10. In particular, when the average particle volume of the magnetic powder containing hexagonal ferrite particles is 1500 nm or less, it is possible to obtain good electromagnetic conversion characteristics (for example, SNR) required for the high recording density magnetic recording portion 10. 3 If the wavelength is less than 1200 nm, better electromagnetic conversion characteristics can be obtained. 3 When the average particle volume of the magnetic powder is 400 nm or less, better electromagnetic conversion characteristics can be obtained. 3 If the above is the case, for example, the thermal stability of the magnetic layer 13 is sufficiently ensured, and the recording state of the magnetic layer 13 is maintained in a good condition.

[0141] The average particle volume of the magnetic powder can be calculated as follows: First, the average plate thickness DAave and average plate diameter DBave are calculated using the above-mentioned method for calculating the average particle size of the magnetic powder. Next, the average particle volume V of the magnetic powder is calculated using the following formula:

number

[0142] According to a particularly preferred embodiment of the present technology, the magnetic powder may be barium ferrite magnetic powder or strontium ferrite magnetic powder, and more preferably barium ferrite magnetic powder. The barium ferrite magnetic powder includes magnetic particles of iron oxide with barium ferrite as the main phase (hereinafter referred to as "barium ferrite particles"). The barium ferrite magnetic powder has high reliability in data recording, for example, because the coercive force does not decrease even in high-temperature and high-humidity environments. From this perspective, barium ferrite magnetic powder is preferred as the magnetic powder.

[0143] When magnetic layer 13 contains barium ferrite magnetic powder as the magnetic powder, the average thickness tm [nm] of magnetic layer 13 is preferably 35 nm≦tm≦100 nm, and particularly preferably 80 nm or less. Furthermore, the coercive force Hc measured in the thickness direction (perpendicular direction) of magnetic recording portion 10 is preferably 160 kA / m or more and 280 kA / m or less, more preferably 165 kA / m or more and 275 kA / m or less, and even more preferably 170 kA / m or more and 270 kA / m or less.

[0144] (Variation 4) The magnetic powder may contain a powder of nanoparticles containing Co-containing spinel ferrite (hereinafter referred to as "cobalt ferrite particles") instead of a powder of ε-iron oxide particles. The cobalt ferrite particles preferably have uniaxial anisotropy. The cobalt ferrite particles have, for example, a cubic or nearly cubic shape. The Co-containing spinel ferrite may further contain at least one of Ni, Mn, Al, Cu, and Zn in addition to Co.

[0145] The Co-containing spinel ferrite has an average composition represented by the following formula, for example. CoxMyFe2O Z (In formula (1), M is, for example, at least one metal selected from the group consisting of Ni, Mn, Al, Cu, and Zn. x is a value within the range of 0.4≦x≦1.0. y is a value within the range of 0≦y≦0.3. However, x and y satisfy the relationship (x+y)≦1.0. z is a value within the range of 3≦z≦4. A portion of Fe may be substituted with another metal element.)

[0146] When the magnetic powder contains cobalt ferrite particles, the average particle size of the magnetic powder is preferably 25 nm or less, more preferably 10 nm or more and 23 nm or less. When the average particle size of the magnetic powder is 25 nm or less, good electromagnetic conversion characteristics (e.g., SNR) can be obtained in a high-recording-density magnetic recording tape 10. On the other hand, when the average particle size of the magnetic powder is 10 nm or more, the dispersibility of the magnetic powder is further improved, and better electromagnetic conversion characteristics (e.g., SNR) can be obtained. When the magnetic powder contains cobalt ferrite particles, the average aspect ratio of the magnetic powder is the same as in the above-described embodiment. The average particle size and average aspect ratio of the magnetic powder can also be calculated using the same calculation method as in the above-described embodiment.

[0147] The average particle volume of the magnetic powder is preferably 15,000 nm 3 Less than 1000 nm, more preferably 3 More than 12000nm 3 The average particle volume of the magnetic powder is 15,000 nm or less. 3 When the average particle size of the magnetic powder is 25 nm or less, the same effect as when the average particle volume of the magnetic powder is 1000 nm or less can be obtained. 3 This provides the same effect as when the average particle size of the magnetic powder is 10 nm or more. The average particle volume of the magnetic powder is calculated in the same manner as in the first embodiment (the method for calculating the average particle volume when the ε iron oxide particles are cubic or nearly cubic).

[0148] The coercive force Hc of the cobalt ferrite magnetic powder is preferably 2500 Oe or more, and more preferably 2600 Oe or more and 3500 Oe or less.

[0149] (Variation 5) The magnetic recording tape of this embodiment may further include a barrier layer 15 provided on at least one surface of the substrate 11, as in the magnetic recording tape 10A shown in FIG. 13 . The barrier layer 15 is a layer for suppressing dimensional changes of the substrate 11 in response to the environment. For example, one cause of such dimensional changes is the hygroscopicity of the substrate 11, and providing the barrier layer 15 can reduce the rate at which moisture penetrates into the substrate 11. The barrier layer 15 includes, for example, a metal or a metal oxide. Examples of metals that can be used here include at least one of Al, Cu, Co, Mg, Si, Ti, V, Cr, Mn, Fe, Ni, Zn, Ga, Ge, Y, Zr, Mo, Ru, Pd, Ag, Ba, Pt, Au, and Ta. Examples of metal oxides that can be used include metal oxides containing one or more of the above metals. More specifically, for example, at least one of Al2O3, CuO, CoO, SiO2, Cr2O3, TiO2, Ta2O5, and ZrO2 can be used. In addition, the barrier layer 15 can be made of diamond-like carbon (Diamond-Like Carbon). Carbon (DLC) or diamond may be included.

[0150] The average thickness of the barrier layer 15 is preferably 20 nm or more and 1000 nm or less, and more preferably 50 nm or more and 1000 nm or less. The average thickness of the barrier layer 15 is determined in the same manner as the average thickness of the magnetic layer 13. However, the magnification of the TEM image is adjusted appropriately depending on the thickness of the barrier layer 15.

[0151] (Variation 6) The magnetic recording medium TM according to the embodiment described above may be used in a library device, in which case the library device may include a plurality of recording / reproducing devices 30 according to the embodiment described above.

[0152] 2. Second embodiment (example of magnetic recording cartridge including sputter-type magnetic recording medium) [2-1. Configuration of Magnetic Recording Cartridge 1] The magnetic recording cartridge 1 of this embodiment is the same as the magnetic recording cartridge 1 described in the first embodiment above, except that it includes a sputtered magnetic recording tape 10B instead of the coated magnetic recording tape 10.

[0153] [2-2. Configuration of Magnetic Recording Tape 10B] FIG. 14 schematically illustrates an example cross-sectional configuration of a magnetic recording tape 10B. The magnetic recording medium 110 is a long perpendicular magnetic recording medium, and as shown in FIG. 14, has a laminated structure in which multiple layers are stacked. Specifically, the magnetic recording tape 10B includes, in order, a long tape-like substrate 111, a first seed layer 113A, a second seed layer 113B, a first underlayer 114A, a second underlayer 114B, and a magnetic layer 115. Here, the SUL 112, the first seed layer 113A, the second seed layer 113B, the first underlayer 114A, the second underlayer 114B, and the magnetic layer 115 can be sputtered films formed by a sputtering method, for example.

[0154] The magnetic recording tape 10B may further include a protective layer 116 and a lubricating layer 117, in that order, on the magnetic layer 115. The magnetic recording tape 10B may also include a back layer 118 provided on the second main surface of the substrate 111. The magnetic recording tape 10B may also include a soft magnetic underlayer (SUL) 112 provided on the first main surface of the substrate 111.

[0155] Hereinafter, the longitudinal direction of the magnetic recording tape 10B (the longitudinal direction of the substrate 111) will be referred to as the machine direction (MD). Here, the machine direction refers to the direction of relative movement of the recording and reproducing heads with respect to the magnetic recording tape 10B, i.e., the direction in which the magnetic recording tape 10B runs during recording and reproduction.

[0156] The magnetic recording tape 10B is suitable for use as a storage medium for data archives, a demand for which is expected to grow in the future. The magnetic recording tape 10B has an areal recording density of 50 Gb / inch, which is 10 times or more the surface recording density of current coated magnetic recording media for storage. 2 When a general linear recording type data cartridge is constructed using magnetic recording tape 10B having such a high areal recording density, a large capacity of 100 TB or more can be recorded per magnetic recording cartridge.

[0157] The magnetic recording tape 10B can be suitably used in a recording / reproducing device (a recording / reproducing device for recording and reproducing data) having a ring-type recording head and a giant magnetoresistive (GMR) or tunneling magnetoresistive (TMR) type reproducing head. Furthermore, the magnetic recording tape 10B preferably uses a ring-type recording head as a servo signal write head. Data signals are perpendicularly recorded on the magnetic layer 115, for example, by a ring-type recording head. Servo signals are perpendicularly recorded on the magnetic layer 115, for example, by a ring-type recording head.

[0158] Magnetic recording tape 10B is connected to leader tape 20 in its longitudinal direction at joint 4. However, magnetic recording tape 10B differs from magnetic recording tape 10 of the first embodiment in that it has the cross-sectional configuration shown in FIG.

[0159] (Base 111) The substrate 111 may have substantially the same configuration as the substrate 11 in the magnetic recording tape 10 of the first embodiment, and therefore a detailed description of the substrate 111 will be omitted.

[0160] (SUL112) The SUL 112 includes a soft magnetic material in an amorphous state. The soft magnetic material includes, for example, at least one of a Co-based material and an Fe-based material. The Co-based material includes, for example, CoZNb, CoZrTa, or CoZrTaNb. The Fe-based material includes, for example, FeCoB, FeCoZr, or FeCoTa.

[0161] The SUL 112 has, for example, a single-layer structure and is provided directly on the substrate 111. The average thickness of the SUL 112 is preferably 10 nm or more and 50 nm or less, and more preferably 20 nm or more and 30 nm or less. The average thickness of the SUL 112 can be determined, for example, using the same method as that used to measure the average thickness of the magnetic layer 13 in the first embodiment. The average thicknesses of the layers other than the SUL 112, i.e., the first seed layer 113A, the second seed layer 113B, the first underlayer 114A, the second underlayer 114B, and the magnetic layer 115, can also be determined using the same method as that used to measure the average thickness of the magnetic layer 13.

[0162] (First seed layer 113A, second seed layer 113B) The first seed layer 113A includes an alloy containing Ti and Cr and has an amorphous material. The alloy may further contain O (oxygen). This oxygen may be impurity oxygen contained in trace amounts in the first seed layer 113A when the first seed layer 113A is formed by a film formation method such as sputtering. The alloy here refers to at least one of a solid solution, a eutectic, and an intermetallic compound containing Ti and Cr. The amorphous state means that a halo is observed by X-ray diffraction or electron beam diffraction, and the crystal structure of the material constituting the first seed layer 113 cannot be identified.

[0163] The atomic ratio of Ti to the total amount of Ti and Cr contained in first seed layer 113A is preferably 30 atomic % or more and less than 100 atomic %, more preferably 50 atomic % or more and less than 100 atomic %. If the atomic ratio of Ti is less than 30%, the (100) plane of the body-centered cubic lattice (bcc) structure of Cr will become oriented, which may reduce the orientation of first underlayer 114A and second underlayer 114B formed on first seed layer 113A.

[0164] The atomic ratio of Ti is determined as follows. While ion milling the magnetic recording medium 110 from the magnetic layer 115 side, a depth profile analysis (depth profile measurement) of the first seed layer 113A is performed by Auger Electron Spectroscopy (AES). Next, the average composition (average atomic ratio) of Ti and Cr in the film thickness direction is determined from the obtained depth profile. Next, the atomic ratio of Ti is determined using the determined average composition of Ti and Cr.

[0165] When first seed layer 113A contains Ti, Cr, and O, the atomic ratio of O to the total amount of Ti, Cr, and O contained in first seed layer 113A is preferably 15 atomic % or less, more preferably 10 atomic % or less. If the atomic ratio of O exceeds 15 atomic %, TiO crystals are generated, which may affect the crystal nucleation of first underlayer 114A and second underlayer 114B formed on first seed layer 113A, and may reduce the orientation of first underlayer 114A and second underlayer 114B. The atomic ratio of O is determined using the same analytical method as for the atomic ratio of Ti.

[0166] The alloy contained in first seed layer 113A may further contain an element other than Ti and Cr as an additional element, which may be, for example, one or more elements selected from the group consisting of Nb, Ni, Mo, Al, and W.

[0167] The average thickness of first seed layer 113A is preferably 1 nm or more and 15 nm or less, and more preferably 1 nm or more and 10 nm or less.

[0168] Second seed layer 113B contains, for example, NiW or Ta, and is in a crystalline state. The average thickness of second seed layer 113B is preferably 2 nm or more and 20 nm or less, and more preferably 3 nm or more and 15 nm or less.

[0169] The first seed layer 113A and the second seed layer 113B are not seed layers provided for the purpose of crystal growth of the first underlayer 114A and the second underlayer 114B, but are seed layers that improve the vertical orientation of the first underlayer 114A and the second underlayer 114B.

[0170] (First Underlayer 114A and Second Underlayer 114B) The first underlayer 114A and the second underlayer 114B preferably have a crystal structure similar to that of the magnetic layer 115. When the magnetic layer 115 contains a Co-based alloy, the first underlayer 114A and the second underlayer 114B preferably contain a material with a hexagonal close-packed (hcp) structure similar to that of the Co-based alloy, with the c-axis of the structure oriented perpendicular to the film surface (i.e., in the film thickness direction). This is because it enhances the orientation of the magnetic layer 115 and can relatively well match the lattice constants of the second underlayer 114B and the magnetic layer 115. As the material with the hexagonal close-packed (hcp) structure, a material containing Ru is preferably used, specifically Ru alone or a Ru alloy. Examples of Ru alloys include Ru alloy oxides such as Ru-SiO2, Ru-TiO2, and Ru-ZrO2, and the Ru alloy may be any one of these. In addition to the above, materials having a hexagonal close-packed (hcp) structure that constitute the first underlayer 114A and the second underlayer 114B include, for example, Co (100-y) Cr y (However, the range is 35≦y≦45.) Co-based alloys such as [Co (100-y) Cr y ](100-z) (MO2) z (where y is within the range of 35≦y≦45, z is within the range of 10, and M is Si or Ti).

[0171] As described above, the first underlayer 114A and the second underlayer 114B can be made of the same material. However, the intended effects of the first underlayer 114A and the second underlayer 114B are different. Specifically, the second underlayer 114B has a film structure that promotes the granular structure of the magnetic layer 115 that is the layer thereover, while the first underlayer 114A has a film structure that has high crystalline orientation. To achieve such a film structure, it is preferable to use different film formation conditions, such as sputtering conditions, for the first underlayer 114A and the second underlayer 114B.

[0172] The average thickness of the first underlayer 114A is preferably 3 nm to 15 nm, more preferably 5 nm to 10 nm. The average thickness of the second underlayer 114B is preferably 7 nm to 100 nm, more preferably 40 nm to 80 nm.

[0173] (magnetic layer) The magnetic layer (also referred to as the recording layer) 115 can be a perpendicular magnetic recording layer in which the magnetic material is perpendicularly oriented. From the viewpoint of improving recording density, the magnetic layer 115 is preferably a granular magnetic layer containing a Co-based alloy. This granular magnetic layer is composed of ferromagnetic crystal grains containing a Co-based alloy and nonmagnetic grain boundaries (nonmagnetic materials) surrounding the ferromagnetic crystal grains. More specifically, this granular magnetic layer is composed of columns (columnar crystals) containing a Co-based alloy and nonmagnetic grain boundaries (e.g., oxides such as SiO2) surrounding the columns and magnetically separating them. This structure allows the magnetic layer 115 to be configured so that each column is magnetically separated.

[0174] The Co-based alloy has a hexagonal close-packed (hcp) structure, with its c-axis oriented perpendicular to the film surface (film thickness direction). The Co-based alloy is preferably a CoCrPt-based alloy containing at least Co, Cr, and Pt. The CoCrPt-based alloy may further contain an additive element. The additive element may be, for example, one or more elements selected from the group consisting of Ni, Ta, etc.

[0175] The nonmagnetic grain boundaries surrounding the ferromagnetic crystal grains contain a nonmagnetic metal material. Here, metal includes semimetal. Examples of the nonmagnetic metal material include at least one of a metal oxide and a metal nitride. From the viewpoint of maintaining a more stable granular structure, a metal oxide is preferable. Examples of metal oxides include metal oxides containing at least one element selected from the group consisting of Si, Cr, Co, Al, Ti, Ta, Zr, Ce, Y, and Hf. Metal oxides containing at least Si oxide (i.e., SiO2) are preferred. Specific examples of metal oxides include SiO2, Cr2O3, CoO, Al2O3, TiO2, Ta2O5, ZrO2, and HfO2. Examples of metal nitrides include metal nitrides containing at least one element selected from the group consisting of Si, Cr, Co, Al, Ti, Ta, Zr, Ce, Y, and Hf. Specific examples of metal nitrides include SiN, TiN, and AlN.

[0176] It is preferable that the CoCrPt alloy contained in the ferromagnetic crystal grains and the Si oxide contained in the non-magnetic grain boundaries have an average composition as shown in the following formula (1), because this can suppress the influence of the demagnetizing field and realize a saturation magnetization Ms that can ensure sufficient reproduction output, thereby further improving the recording and reproduction characteristics. (CoxPtyCr100-xy)100-z-(SiO2)z···(1) (In formula (1), x, y, and z are values ​​within the ranges of 69≦x≦75, 10≦y≦16, and 9≦z≦12, respectively.)

[0177] The above composition can be determined as follows: While ion milling the magnetic recording medium 110 from the magnetic layer 115 side, depth direction analysis of the magnetic layer 115 is performed by AES to determine the average composition (average atomic ratio) of Co, Pt, Cr, Si, and O in the film thickness direction.

[0178] The average thickness tm [nm] of the magnetic layer 115 is preferably 9 nm≦tm≦90 nm, more preferably 9 nm≦tm≦20 nm, and even more preferably 9 nm≦tm≦15 nm. When the average thickness tm of the magnetic layer 115 is within the above range, the electromagnetic conversion characteristics can be improved.

[0179] The magnetic powder in the magnetic layer 115 formed by sputtering has an average particle volume of 350 nm 3 More than 1800nm 3 It is desirable that the average particle volume of the magnetic powder in the magnetic layer 115 is determined by first exposing the surface of the magnetic layer 115 by etching and observing the surface using a TEM. From the observed image, the diameter R115 of the magnetic particles on the surface of the magnetic layer 115 is measured. Next, a cross section of the magnetic layer 115 is formed using, for example, an FIB, and the thickness t115 of the magnetic layer 115 is measured from the image of the cross section obtained using the TEM. The particle volume is then determined using the following formula: (Particle volume) = ((R115) / 2)2 × π × (t115) This is repeated at several points, and the average value of the particle volumes is calculated.

[0180] (protective layer) The protective layer 116 includes, for example, a carbon material or silicon dioxide (SiO2), and preferably includes a carbon material from the viewpoint of the film strength of the protective layer 116. Examples of the carbon material include graphite, diamond-like carbon (DLC), and diamond.

[0181] (lubricating layer) The lubricating layer 117 contains at least one type of lubricant. The lubricating layer 117 may further contain various additives, such as a rust inhibitor, as necessary. The lubricant has at least two carboxyl groups and one ester bond and contains at least one type of carboxylic acid compound represented by the following general formula (1). The lubricant may further contain a type of lubricant other than the carboxylic acid compound represented by the following general formula (1). General formula (1): [ka] (In the formula, Rf is an unsubstituted or substituted, saturated or unsaturated fluorine-containing hydrocarbon group or hydrocarbon group, Es is an ester bond, and R is, although it may be absent, an unsubstituted or substituted, saturated or unsaturated hydrocarbon group.)

[0182] The carboxylic acid compound is preferably one represented by the following general formula (2) or (3). General formula (2): [ka] (wherein Rf is an unsubstituted or substituted, saturated or unsaturated fluorine-containing carbon atom) is a hydrogen group or a hydrocarbon group. General formula (3): [ka] (In the formula, Rf is an unsubstituted or substituted, saturated or unsaturated fluorine-containing hydrocarbon group or hydrocarbon group.)

[0183] The lubricant preferably contains one or both of the carboxylic acid compounds represented by the above general formulas (2) and (3).

[0184] When a lubricant containing a carboxylic acid compound represented by general formula (1) is applied to magnetic layer 115 or protective layer 116, a lubricating effect is exhibited due to the cohesive force between the hydrophobic fluorine-containing hydrocarbon groups or hydrocarbon groups Rf. When the Rf group is a fluorine-containing hydrocarbon group, it preferably has a total of 6 to 50 carbon atoms and a total of 4 to 20 carbon atoms in the fluorinated hydrocarbon group. The Rf group may be, for example, a saturated or unsaturated linear, branched, or cyclic hydrocarbon group, but is preferably a saturated linear hydrocarbon group.

[0185] For example, when the Rf group is a hydrocarbon group, it is desirable that it is a group represented by the following general formula (4). General formula (4): [ka] (However, in general formula (4), l is an integer selected from the range of 8 to 30, more preferably 12 to 20.)

[0186] Furthermore, when the Rf group is a fluorine-containing hydrocarbon group, it is preferably a group represented by the following general formula (5). General formula (5): [ka] (In the general formula (5), m and n are integers independently selected from the following ranges: m=2 to 20, n=3 to 18, and more preferably m=4 to 13, n=3 to 10.)

[0187] The fluorohydrocarbon groups may be concentrated at one location within the molecule as described above, or may be dispersed as shown in the following general formula (6), and may be -CF3 or -CF2-, or may be -CHF2 or -CHF-, etc. General formula (6): [ka] (However, in general formulas (5) and (6), n1+n2=n, and m1+m2=m.)

[0188] The reason for limiting the number of carbon atoms in the general formulas (4), (5), and (6) as above is that if the number of carbon atoms constituting the alkyl group or fluorine-containing alkyl group (l or the sum of m and n) is equal to or greater than the lower limit, the length becomes appropriate, the cohesive force between the hydrophobic groups is effectively exerted, good lubricating action is exhibited, and friction and wear resistance are improved. On the other hand, if the number of carbon atoms is equal to or less than the upper limit, the solubility of the lubricant composed of the carboxylic acid compound in the solvent is maintained good.

[0189] In particular, when the Rf groups in the general formulae (1), (2), and (3) contain a fluorine atom, this is effective in reducing the coefficient of friction and further improving running performance, etc. However, it is preferable to provide a hydrocarbon group between the fluorine-containing hydrocarbon group and the ester bond to separate the fluorine-containing hydrocarbon group from the ester bond, thereby ensuring the stability of the ester bond and preventing hydrolysis.

[0190] The Rf group may also have a fluoroalkyl ether group or a perfluoropolyether group.

[0191] The R group in general formula (1) may not be present, but if present, it is preferably a hydrocarbon chain with a relatively small number of carbon atoms.

[0192] Furthermore, the Rf group or the R group contains one or more elements selected from nitrogen, oxygen, sulfur, phosphorus, and halogen as constituent elements, and may further have a hydroxyl group, a carboxyl group, a carbonyl group, an amino group, an ester bond, or the like in addition to the functional groups described above.

[0193] Specifically, the carboxylic acid compound represented by general formula (1) is preferably at least one of the compounds shown below. That is, the lubricant preferably contains at least one of the compounds shown below. CF3(CF2)7(CH2) 10 COOCH(COOH)CH2COOH CF3(CF2)3(CH2) 10 COOCH(COOH)CH2COOH C17H 35 COOCH(COOH)CH2COOH CF3(CF2)7(CH2)2OCOCH2CH(C 18 H 37 )COOCH(COOH)CH2COOH CF3(CF2)7COOCH(COOH)CH2COOH CHF2(CF2)7COOCH(COOH)CH2COOH CF3(CF2)7(CH2) 2O COCH2CH(COOH)CH2COOH CF3(CF2)7(CH2) 6O COCH2CH(COOH)CH2COOH CF3(CF2)7(CH2) 11O COCH2CH(COOH)CH2COOH CF3(CF2)3(CH2) 6O COCH2CH(COOH)CH2COOH C 18 H 37 OCOCH2CH(COOH)CH2COOH CF3(CF2)7(CH2)4COOCH(COOH)CH2COOH CF3(CF2)3(CH2)4COOCH(COOH)CH2COOH CF3(CF2)3(CH2)7COOCH(COOH)CH2COOH CF3(CF2)9(CH2)10COOCH(COOH)CH2COOH CF3(CF2)7(CH2)12COOCH(COOH)CH2COOH CF3(CF2)5(CH2)10COOCH(COOH)CH2COOH CF3(CF2)7CH(C9H19)CH2CH=CH(CH2)7COOCH(COOH)CH2COOH CF3(CF2)7CH(C6H13)(CH2)7COOCH(COOH)CH2COOH CH3(CH2)3(CH2CH2CH(CH2CH2(CF2)9CF3))2(CH2)7COOCH(COOH)CH2COOH

[0194] The carboxylic acid compound represented by general formula (1) is soluble in non-fluorinated solvents that have a low environmental impact, and has the advantage that it can be applied by coating, immersion, spraying, etc. using general-purpose solvents such as hydrocarbon solvents, ketone solvents, alcohol solvents, and ester solvents. Specific examples of the general-purpose solvents include hexane, heptane, octane, decane, dodecane, benzene, toluene, xylene, cyclohexane, methyl ethyl ketone, methyl isobutyl ketone, methanol, ethanol, isopropanol, diethyl ether, tetrahydrofuran, dioxane, and cyclohexanone.

[0195] When the protective layer 116 contains a carbon material, applying the above-mentioned carboxylic acid compound as a lubricant onto the protective layer 116 causes two carboxyl groups and at least one ester bond group, which are the polar bases of the lubricant molecule, to be adsorbed onto the protective layer 116, and the cohesive force between the hydrophobic groups allows the formation of a particularly durable lubricating layer 117.

[0196] The lubricant may not only be retained as a lubricating layer 117 on the surface of the magnetic recording tape 10B as described above, but may also be contained and retained in layers such as the magnetic layer 115 and protective layer 116 that make up the magnetic recording tape 10B.

[0197] (Back layer) The back layer 118 can have the same configuration as the back layer 14 in the first embodiment.

[0198] The explanations regarding the physical properties of magnetic recording tape 10 and the methods for measuring them described in the first embodiment also apply to the physical properties of magnetic recording tape 10B of this embodiment and the methods for measuring them. For example, the average thickness of magnetic recording tape 10B and the methods for measuring it are the same as those for magnetic recording tape 10B. The same is true for parameters that represent other physical properties, such as coercive force Hc, squareness ratio, and moisture content WA.

[0199] [2-3. Configuration of the sputtering equipment] An example of the configuration of a sputtering apparatus 120 used in manufacturing magnetic recording tape 10B will be described below with reference to Fig. 15. Sputtering apparatus 120 is a continuous winding sputtering apparatus used to form SUL 112, first seed layer 113A, second seed layer 113B, first underlayer 114A, second underlayer 114B, and magnetic layer 115. As shown in Fig. 14, sputtering apparatus 120 includes a film formation chamber 121, a drum 122 which is a metal can (rotating body), cathodes 123a-123f, a supply reel 124, a take-up reel 125, and a plurality of guide rollers 127a-127c and 128a-128c. Sputtering apparatus 120 is, for example, a DC (direct current) magnetron sputtering type apparatus, but the sputtering type is not limited to this type.

[0200] The film formation chamber 121 is connected to a vacuum pump (not shown) via an exhaust port 126, and the atmosphere inside the film formation chamber 121 is set to a predetermined vacuum level by this vacuum pump. A rotatable drum 122, a supply reel 124, and a take-up reel 125 are arranged inside the film formation chamber 121. A plurality of guide rollers 127a to 127c are provided inside the film formation chamber 121 to guide the transport of the base layer 111 between the supply reel 124 and the drum 122, and a plurality of guide rollers 128a to 128c are provided inside the film formation chamber 121 to guide the transport of the base layer 111 between the drum 122 and the take-up reel 125. During sputtering, the base layer 111 unwound from the supply reel 124 is wound onto the take-up reel 125 via the guide rollers 127a to 127c, the drum 122, and the guide rollers 128a to 128c. The drum 122 has a cylindrical shape, and the long base layer 111 is transported along the cylindrical circumferential surface of the drum 122. The drum 122 is provided with a cooling mechanism (not shown), and is cooled to, for example, about −20° C. during sputtering. Inside the film formation chamber 121, multiple cathodes 123a to 123f are arranged facing the circumferential surface of the drum 122. Targets are set on each of these cathodes 123a to 123f. Specifically, targets for forming the SUL 112, the first seed layer 113A, the second seed layer 113B, the first underlayer 114A, the second underlayer 114B, and the magnetic layer 115 are set on the cathodes 123a, 123b, 123c, 123d, 123e, and 123f, respectively. These cathodes 123a to 123f simultaneously deposit multiple types of films, namely, SUL 112, first seed layer 113A, second seed layer 113B, first underlayer 114A, second underlayer 114B, and magnetic layer 115.

[0201] In the sputtering apparatus 120 having the above-described configuration, the SUL 112, the first seed layer 113A, the second seed layer 113B, the first underlayer 114A, the second underlayer 114B, and the magnetic layer 115 can be successively deposited by the roll-to-roll method.

[0202] [2-4. Manufacturing Method of Magnetic Recording Tape 10B] The magnetic recording tape 10B can be manufactured, for example, as follows.

[0203] First, using the sputtering apparatus 120 shown in FIG. 15, the SUL 112, the first seed layer 113A, the second seed layer 113B, the first underlayer 114A, the second underlayer 114B, and the magnetic layer 115 are sequentially deposited on the surface of the base layer 111. Specifically, the deposition is performed as follows. First, the deposition chamber 121 is evacuated to a predetermined pressure. Then, while a process gas such as Ar gas is introduced into the deposition chamber 121, the targets set on the cathodes 123a to 123f are sputtered. As a result, the SUL 112, the first seed layer 113A, the second seed layer 113B, the first underlayer 114A, the second underlayer 114B, and the magnetic layer 115 are sequentially deposited on the surface of the traveling base layer 111.

[0204] The atmosphere in the film forming chamber 121 during sputtering is, for example, 1×10 -5 Pa~5×10 -5 The pressure is set to about Pa. The film thickness and characteristics of SUL 112, first seed layer 113A, second seed layer 113B, first underlayer 114A, second underlayer 114B, and magnetic layer 115 can be controlled by adjusting the tape line speed for winding up base layer 111, the pressure of process gas such as Ar gas introduced during sputtering (sputtering gas pressure), input power, etc.

[0205] Next, the protective layer 116 is formed on the magnetic layer 115. The protective layer 116 can be formed by, for example, chemical vapor deposition (CVD) or physical vapor deposition (PVD).

[0206] Next, a coating material for forming the back layer is prepared by kneading and dispersing a binder, inorganic particles, a lubricant, etc. in a solvent. Next, the coating material for forming the back layer is applied to the rear surface of the base layer 111 and dried, thereby forming the back layer 118 on the rear surface of the base layer 111.

[0207] Next, for example, a lubricant is applied onto protective layer 116 to form lubricating layer 117. Various application methods such as gravure coating and dip coating can be used to apply the lubricant. Next, if necessary, magnetic recording tape 10B is cut to a predetermined width. In this manner, magnetic recording tape 10B shown in FIG. 14 is obtained.

[0208] [2-5. Effects] In this embodiment as well, the use of leader tape 20 can reduce the amount of bending and dents that are transferred to the surface of magnetic recording tape 10B. This allows for smooth operation of recording information to and reading information from magnetic recording tape 10B without impeding the operation.

[0209] [2-6. Modifications] The magnetic recording tape 10B may further include an underlayer between the substrate 111 and the SUL 112. Because the SUL 112 is amorphous, it does not promote epitaxial growth of layers formed on the SUL 112. However, the SUL 112 is required not to disturb the crystalline orientation of the first underlayer 114A and the second underlayer 114B formed on the SUL 112. To achieve this, it is preferable that the soft magnetic material have a fine structure that does not form columns. However, if the release of gases such as moisture from the substrate 111 has a significant effect, the soft magnetic material may coarsen, potentially disturbing the crystalline orientation of the first underlayer 114A and the second underlayer 114B formed on the SUL 112. To suppress the effect of the release of gases such as moisture from the substrate 111, it is preferable to provide an underlayer that contains an alloy containing Ti and Cr and is amorphous between the substrate 111 and the SUL 112, as described above. The specific configuration of this underlayer may be the same as that of the first seed layer 113A.

[0210] Magnetic recording tape 10B does not have to include at least one of second seed layer 113B and second underlayer 114B, but from the standpoint of improving the SNR, it is more preferable to include both second seed layer 113B and second underlayer 114B.

[0211] The magnetic recording tape 10B may be provided with an APC-SUL (Antiparallel Coupled SUL) instead of the SUL 112 having a single layer structure.

[0212] <3. Example> The present disclosure will be specifically described below using examples, but the present disclosure is not limited to these examples.

[0213] In the following examples and comparative examples, the maximum step ΔT of the leader tape is a value determined by the measurement method described in the first embodiment above.

[0214] [Example 1] A magnetic recording medium as Example 1 was obtained as follows.

[0215] First, a magnetic recording tape was prepared as follows.

[0216] <Preparation process of paint for forming magnetic layer> The magnetic layer-forming paint was prepared as follows. First, a first composition having the following formulation was kneaded using an extruder. Next, the kneaded first composition and a second composition having the following formulation were added to a stirring tank equipped with a disperser and premixed. Next, further mixing was performed using a Dynomill and filtering was performed to prepare the magnetic layer-forming paint.

[0217] (First composition) The components and weights of the first composition are as follows: Barium ferrite (BaFe12O19) particle powder (hexagonal plate shape, average aspect ratio 3.0, average particle volume 1600nm3): 100 parts by mass 50 parts by mass of vinyl chloride resin solution in cyclohexanone (The composition of the solution was 30% by mass of resin and 70% by mass of cyclohexanone. The details of the vinyl chloride resin were as follows: degree of polymerization 300, Mn = 10,000, and contained polar groups OSOK = 0.07 mmol / g and secondary OH = 0.3 mmol / g.) Aluminum oxide powder (α-Al2O3, average particle size 0.1 μm): 5 parts by mass

[0218] (Second composition) The components and weights of the second composition are as follows: Carbon black: 2 parts by weight (Manufactured by Tokai Carbon Co., Ltd., product name: Seest TA) Polyurethane resin (resin solution: polyurethane resin content 30% by mass, cyclohexanone content 70% by mass): 5.56 parts by mass (Polyurethane resin: number average molecular weight Mn = 25,000, Tg 110°C) n-Butyl stearate as fatty acid ester: 2 parts by mass Methyl ethyl ketone: 121.3 parts by mass Toluene: 121.3 parts by mass Cyclohexanone: 60.7 parts by mass

[0219] To the magnetic layer-forming coating material prepared as described above, 4 parts by mass of polyisocyanate (trade name: Coronate L, manufactured by Tosoh Corporation) as a curing agent and 2 parts by mass of stearic acid as a fatty acid were added.

[0220] <Preparation process of paint for forming base layer> The paint for forming the primer layer was prepared as follows. First, the third composition having the following composition was kneaded using an extruder. Next, the kneaded third composition and the fourth composition having the following composition were added to a stirring tank equipped with a disperser and premixed. Subsequently, further mixing was performed using a Dynomill and filtering was performed to prepare the paint for forming the primer layer.

[0221] (Third composition) The components and weights of the third composition are as follows: ·Acicular iron oxide powder (α-Fe2O3, average major axis length 0.12μm): 100 parts by mass Vinyl chloride resin (resin solution: resin content 30% by mass, cyclohexanone 70% by mass): 46 parts by mass (Polyurethane resin: number average molecular weight Mn = 25,000, Tg 110°C)

[0222] (4th composition) The components and weights of the fourth composition are as follows: Carbon black (average particle size 20 nm): 20 parts by mass Polyurethane resin (resin solution: resin content 30% by mass, cyclohexanone 70% by mass): 37 parts by mass (Polyurethane resin: number average molecular weight Mn = 25,000, Tg 110°C) n-Butyl stearate as fatty acid ester: 2 parts by mass Methyl ethyl ketone: 108.2 parts by mass Toluene: 108.2 parts by mass Cyclohexanone: 18.5 parts by mass

[0223] To the base layer forming paint prepared as described above, 2.49 parts by mass of polyisocyanate (trade name: Coronate L, manufactured by Tosoh Corporation) as a curing agent and 2 parts by mass of stearic acid as a fatty acid were added.

[0224] <Preparation process of paint for forming back layer> The paint for forming the back layer was prepared as follows: The following raw materials were mixed in a stirring tank equipped with a disperser, and the mixture was filtered to prepare the paint for forming the back layer: Carbon black (manufactured by Asahi Carbon Co., Ltd., product name: #80): 100 parts by mass Polyester polyurethane (manufactured by Tosoh Corporation, product name: N-2304): 100 parts by weight Methyl ethyl ketone: 500 parts by weight Toluene: 400 parts by mass Cyclohexanone: 100 parts by mass Polyisocyanate (product name: Coronate L, manufactured by Tosoh Corporation): 10 parts by mass

[0225] <Coating process> Using the magnetic layer-forming paint and primer layer-forming paint prepared as described above, a primer layer with an average thickness of 0.92 μm and a magnetic layer with an average thickness of 80 nm were formed on one main surface of a long polyester film (non-magnetic support) with an average thickness of 4.0 μm, as follows: First, the primer layer-forming paint was applied to one main surface of the polyester film and dried to form a primer layer. Next, the magnetic layer-forming paint was applied to the primer layer and dried to form a magnetic layer. The weight ratio of vinyl chloride resin to polyurethane resin in the binder of the magnetic layer was 1:1. Furthermore, during drying of the magnetic layer-forming paint, a solenoid coil was used to magnetically orient the magnetic powder in the thickness direction of the film. The squareness ratio in the thickness direction (perpendicular direction) of the magnetic recording medium was 67%. Next, the back layer-forming paint was applied to the other main surface of the polyester film and dried to form a back layer with an average thickness of 0.3 μm. This resulted in a magnetic recording medium.

[0226] <Calendaring process and transfer process> Subsequently, a calendering treatment was performed to smooth the surface of the magnetic layer. Next, the magnetic recording tape with the smoothed surface of the magnetic layer was wound into a roll, and then the magnetic recording tape was subjected to a heat treatment at 60°C for 10 hours in this state. The magnetic recording tape was then rewound into a roll so that the end located on the inner periphery was now located on the outer periphery, and then the magnetic recording tape was subjected to a heat treatment again at 60°C for 10 hours in this state.

[0227] <Cutting process> The magnetic recording tape obtained as described above was cut into 1 / 2 inch (12.65 mm) widths. This resulted in the desired long magnetic recording tape (average thickness 5.2 μm). The length of the magnetic recording tape in the longitudinal direction was 1035 m.

[0228] Next, the magnetic recording tape of Example 1 obtained as described above was connected to the magnetic recording tape of Example 1. The leader tape was prepared as follows.

[0229] (Preparation process of paint for forming magnetic layer) A coating material for forming the magnetic layer was prepared as follows.

[0230] (First composition) Acicular metal magnetic powder (acicular ratio 6.0, average particle volume V is 5000 nm3): 100 parts by weight Vinyl chloride resin (30% by mass in cyclohexanone solution): 35.0 parts by mass (degree of polymerization 300, Mn=10,000, contains polar groups OSOK=0.07 mmol / g and secondary OH=0.3 mmol / g) Polyurethane resin (resin solution: resin content 30% by mass, cyclohexanone 70% by mass): 32 parts by mass (Polyurethane resin: number average molecular weight Mn = 25,000, Tg 110°C) Carbon black: 3 parts by weight (manufactured by Tokai Carbon Co., Ltd., product name: Seest TA) Aluminum oxide powder: 5 parts by weight (α-Al2O3, average particle size 0.1 μm) n-Butyl stearate: 2 parts by mass Methyl ethyl ketone: 121.3 parts by mass Toluene: 121.3 parts by mass Cyclohexanone: 60.7 parts by mass

[0231] Finally, 4 parts by mass of polyisocyanate (trade name: Coronate L, manufactured by Nippon Polyurethane Co., Ltd.) and 2 parts by mass of myristic acid were added as a curing agent to the magnetic layer-forming coating material prepared as described above.

[0232] (Preparation process of paint for forming base layer) The paint for forming the primer layer was prepared as follows. First, the third composition having the following composition was kneaded using an extruder. Next, the kneaded third composition and the fourth composition having the following composition were added to a stirring tank equipped with a disperser and premixed. Subsequently, further mixing was performed using a Dynomill and filtering was performed to prepare the paint for forming the primer layer.

[0233] (Third composition) ·Acicular iron oxide powder: 100 parts by mass (α-Fe2O3, average major axis length 0.12μm) Vinyl chloride resin: 46 parts by weight (resin solution: 30% by weight resin, 70% by weight cyclohexanone)

[0234] (4th composition) Carbon black: 20 parts by weight (average particle size 20 nm) Polyurethane resin (resin solution: resin content 30% by mass, cyclohexanone 70% by mass): 37 parts by mass (Polyurethane resin: number average molecular weight Mn = 25,000, Tg 110°C) n-Butyl stearate: 2 parts by mass Methyl ethyl ketone: 108.2 parts by mass Toluene: 108.2 parts by mass Cyclohexanone: 18.5 parts by mass

[0235] Finally, 2.49 parts by mass of polyisocyanate (trade name: Coronate L, manufactured by Nippon Polyurethane Co., Ltd.) as a curing agent and 2 parts by mass of myristic acid were added to the coating material for forming the undercoat layer prepared as described above.

[0236] (Preparation process of paint for forming back layer) The coating material for forming a back layer was prepared as follows: The following raw materials were mixed in a stirring tank equipped with a disperser, and the mixture was filtered to prepare the coating material for forming a back layer. Carbon black (manufactured by Asahi Carbon Co., Ltd., product name: #80): 100 parts by weight Polyester polyurethane: 100 parts by weight (Nippon Polyurethane Co., Ltd., product name: N-2304) Methyl ethyl ketone: 500 parts by weight Toluene: 400 parts by mass Cyclohexanone: 100 parts by mass Polyisocyanate (product name: Coronate L, manufactured by Tosoh Corporation): 10 parts by mass

[0237] (Film forming process) Using the coating material prepared as described above, an underlayer and a magnetic layer were formed on a base film as follows. A long polyester film with an average thickness of 15.0 μm was used as the base film. First, a coating material for forming a underlayer was applied to the base film and dried, thereby forming an underlayer on the base film. Next, a coating material for forming a magnetic layer was applied to the underlayer and dried, thereby forming a magnetic layer on the underlayer. During drying of the coating material for forming a magnetic layer, a solenoid coil was used to magnetically orient the magnetic powder in the thickness direction of the film. The application time of the magnetic field to the coating material for forming a magnetic layer was adjusted to set the squareness ratio S2 in the thickness direction (perpendicular direction) of the magnetic recording medium to 65%. The underlayer was formed to have a final average thickness of 1.5 μm. The magnetic layer was formed to have a final average thickness of 0.2 μm.

[0238] Next, a backing layer was applied to the base film on which the underlayer and magnetic layer were formed and dried. The base film on which the underlayer, magnetic layer, and backing layer were formed was then subjected to a curing process. A calendering process was then performed to smooth the surface of the magnetic layer. A further curing process was performed, resulting in a leader tape with an average thickness of 17.0 μm. The backing layer was formed so that the final average thickness would be 0.50 μm.

[0239] (Cutting process) The leader tape obtained as described above was cut to a width of 1 / 2 inch (12.65 mm). As a result, the desired long leader tape (average thickness 17.0 μm) was obtained as Example 1. The length of the leader tape in the longitudinal direction was 4500 mm. Finally, the separately prepared magnetic recording tape of Example 1 and the leader tape of Example 1 were spliced ​​together to obtain the magnetic recording medium of Example 1.

[0240] The magnetic recording medium of Example 1 obtained was run under the above-mentioned constant conditions, and then a leader tape was taken from the magnetic recording medium, and the maximum step height ΔT of the step portion of the leader tape was measured. The results are shown in Table 1. Note that the confirmation position [m] in Table 1 indicates the longitudinal position from the start end of the leader tape.

[0241] [Table 1]

[0242] Table 1 also shows the error rate and PES. The error rate here refers to the Error Correcting Code (ECC) specified in the ECMA International standard "Standard ECMA-319 Data Interchange on 12.7 mm 384-Track Magnetic Tape Cartridges - Ultrium-1 Format" (https: / / www.ecma-international.org / wp-content / uploads / ECMA-319#1st#edition#june#2001.pdf). The error rate was evaluated using a full-height drive for LTO9, using the method specified in ECMA-319.

[0243] Next, PES will be described with reference to FIGS. 16A to 16C. FIG. 16A is a diagram illustrating a method for measuring PES using the recording / reproducing device 30 of FIG. 11. FIG. 16B is a schematic diagram of the head unit 36 ​​of the recording / reproducing device 30. The head unit 36 ​​has, for example, two servo read heads and multiple data write heads. FIG. 16B is a schematic diagram of the head unit 36 ​​viewed from the bottom (tape running surface). As shown in FIG. 16B, the head unit 36 ​​includes a first drive head unit 36a, a second drive head unit 36b, and a third drive head unit 36c. The first drive head unit 36a and the second drive head unit 36b are configured symmetrically with respect to the X-axis direction, which is the running direction of the magnetic recording medium TM. The third drive head unit 36c is disposed between the first drive head unit 36a and the second drive head unit 36b in the X-axis direction. The first to third drive head portions 36a to 36c are configured to be movable in the Y-axis direction, which is the width direction of the magnetic recording medium TM1.

[0244] The first drive head unit 36a is a drive head used when the magnetic recording medium TM runs in the forward direction, i.e., the +X direction. On the other hand, the second drive head unit 36b is a drive head used when the magnetic recording tape 10 runs in the reverse direction, i.e., the -X direction. Since the first drive head unit 36a and the second drive head unit 36b have basically the same configuration, the first drive head unit 36a will be described as a representative example.

[0245] The first drive head unit 36 ​​a has a head main body 131 , two servo read heads 132 , and a plurality of data write heads 133 .

[0246] The servo read heads 132 are provided one on each end of the head body 131 in the width direction (Y-axis direction). The MR element may be a tunnel magnetoresistive effect element (TMR: Tunnel Magneto Resistive effect). The spacing between the two servo read heads 132 in the width direction (Y-axis direction) is preferably approximately the same as the distance between adjacent servo bands s on the magnetic recording medium TM.

[0247] The data write heads 133 are arranged at equal intervals along the width direction (Y-axis direction). The data write heads 133 are arranged at positions sandwiched between two servo read heads 132. The number of data write heads 133 is, for example, about 20 or 40, but there is no particular limitation to this number. The data write heads 133 are configured to be able to record data signals on the data band d of the magnetic recording tape 10 by means of a magnetic field generated from the magnetic gap.

[0248] The third drive head unit 36c has, for example, a head main body 131, two servo heads 134, and a plurality of data read heads 135. The data read head 135 is configured to be able to reproduce data signals by reading a magnetic field generated from magnetic information recorded on a data band d of the magnetic recording medium TM using an MR element or the like. Examples of the MR element include a tunnel magnetoresistive effect element (TMR).

[0249] The first drive head unit 36a is located to the left of the third drive head unit 36c, i.e., upstream when the magnetic recording medium TM flows in the forward direction. Meanwhile, the second drive head unit 36b is located to the right of the third drive head unit 36c, i.e., upstream when the magnetic recording medium TM flows in the reverse direction. The data read head 135 of the third drive head unit 36c can read a data signal immediately after the first drive head unit 36a or the second drive head unit 36b writes the data signal to the magnetic recording medium TM.

[0250] The PES here is a numerical value that represents the relative position of the servo trace line T on each servo band of the two servo read heads 132 (FIG. 16B) relative to the servo pattern 6 when the recording / reproducing device 30 runs the entire length of the magnetic recording medium TM. The spacing between the servo trace lines T shown by the solid line in FIG. 16A indicates the servo band pitch when the width of the magnetic recording medium TM does not change, i.e., the first pitch P1, which is the arrangement distance between the two servo read heads 132 of the head unit 36. Moreover, the spacing between the servo trace lines T shown by the dashed line in FIG. 16A corresponds to the servo band pitch P2' when the width of the magnetic recording medium TM widens.

[0251] FIG. 16C is a diagram illustrating a method for measuring the servo trace line T. The magnetic recording and reproducing device 30 outputs a servo reproduction signal having a waveform corresponding to the position of the servo trace line T relative to the servo pattern 6. Typically, the distance AC between the A burst and the C burst, which are arrays of inclination patterns with the same shape, and the distance AB between the A burst and the B burst, which are arrays of inclination patterns with different shapes, are calculated, and a numerical value representing the relative position of the servo trace line T of each servo read head 132 relative to the servo pattern 6 is calculated using the following formula [5]. Note that θ is the azimuth angle of each inclination pattern, which is set to 12° in this example. The distance AC is calculated by multiplying AC Time by the tape running speed. Here, AC Time means the time from the A signal to the C signal. When measuring AC Time from measurements using multiple servo frames, it is calculated by multiplying the arithmetic mean value of AC Time by the tape running speed. Similarly, the distance AB is calculated by multiplying AB Time by the tape running speed. Here, AB Time refers to the time from signal A to signal B. In the following equation (1), ΣAB Time and ΣAC Time refer to the integrated values ​​of AB Time and AC Time over 100,100,000 servo frames. In equation (5), when calculating (ΣAB Time / ΣAC Time), if AB Time is the time when the servo reproduction waveform between the first slope portions has a peak, AC Time is also the time when the servo reproduction waveform between the first slope portions has a peak. If AB Time is the time when the servo reproduction waveform between the second slope portions has a peak, AC Time is also the time when the servo reproduction waveform between the second slope portions has a peak. If AB Time is the time when the servo reproduction waveform between the third slope portions has a peak, AC Time is also the time when the servo reproduction waveform between the third slope portions has a peak. If AB Time is the time when the servo reproduction waveform between the fourth slope portions has a peak, AC Time is also the time when the servo reproduction waveform between the fourth slope portions has a peak. The position of T is the position where (ΣAB Time / ΣAC Time) is 1.

[0252]

number

[0253] Here, the distance AC may be the distance AC1 between the first slopes of the A burst and the C burst, the distance AC2 between their second slopes, the distance AC3 between their third slopes, or the distance AC4 between their fourth slopes. These distances AC (AC1AC4) are calculated by multiplying the tape running speed by the time between the timings at which the amplitude of the servo playback waveform reaches its maximum positive value (upper peak).

[0254] In this example, the PES was measured using an LTO-9 drive servo characteristic evaluation device.

[0255] [Example 2] Except for the fact that the underlayer of the leader tape was formed so that the final average thickness was 1.3 μm, the magnetic recording medium of Example 2 was produced in the same manner as the magnetic recording medium of Example 1. The maximum step difference ΔT, error rate, and PES of the magnetic recording medium of Example 2 thus obtained were also measured in the same manner as Example 1. The results are shown in Table 1.

[0256] [Example 3] Except for the fact that the underlayer of the leader tape was formed so that the final average thickness was 1.1 μm, the magnetic recording medium of Example 3 was produced in the same manner as the magnetic recording medium of Example 1. The maximum step difference ΔT, error rate, and PES of the magnetic recording medium of Example 3 thus obtained were also measured in the same manner as Example 1. The results are shown in Table 1.

[0257] [Comparative Example 1] Except for the fact that the length of the leader tape in the longitudinal direction was 900±30 mm, the magnetic recording medium of Comparative Example 1 was produced in the same manner as the magnetic recording medium of Example 1. The maximum step difference ΔT, error rate, and PES of the magnetic recording medium of Comparative Example 1 thus obtained were also measured in the same manner as in Example 1. The results are shown in Table 1.

[0258] Comparative Example 2 Except for the fact that the underlayer of the leader tape was formed so that the final average thickness was 1.3 μm, the magnetic recording medium of Comparative Example 2 was produced in the same manner as the magnetic recording medium of Comparative Example 1. The maximum step difference ΔT, error rate, and PES of the magnetic recording medium of Comparative Example 2 thus obtained were also measured in the same manner as in Example 1. The results are shown in Table 1.

[0259] Comparative Example 3 Except for the fact that the underlayer of the leader tape was formed so that the final average thickness was 1.1 μm, the magnetic recording medium of Comparative Example 3 was produced in the same manner as the magnetic recording medium of Comparative Example 1. The maximum step difference ΔT, error rate, and PES of the magnetic recording medium of Comparative Example 3 thus obtained were also measured in the same manner as in Example 1. The results are shown in Table 1.

[0260] [evaluation] As shown in Table 1, in Examples 1 to 3, the maximum step height ΔT of the step portion at the position closest to splice 4, i.e., 4.4 m from the beginning of the leader tape and 0.1 m from splice 4 toward the beginning of the leader tape, was 34 μm or less. On the other hand, in Comparative Examples 1 to 3, the maximum step height ΔT of the step portion at the position closest to splice 4, i.e., 0.8 m from the beginning of the leader tape, was 39 μm or less. Therefore, in terms of both error rate and PES, Examples 1 to 3 obtained better results than Comparative Examples 1 to 3. In other words, it was confirmed that by setting the maximum step height of the step portion of the leader tape closest to the splice with the magnetic recording tape to 34 μm or less in the thickness direction of the leader tape, it was possible to reduce bending and dents that are transferred to the surface of the magnetic recording tape. As a result, it was confirmed that the operation of recording information to and reading information from the magnetic recording tape could be performed well without interference.

[0261] The present disclosure has been specifically described above by giving embodiments and modifications thereof, but the present disclosure is not limited to the above embodiments, and various modifications are possible.

[0262] For example, the configurations, methods, steps, shapes, materials, and numerical values, etc., described in the above-described embodiments and their modified examples are merely examples, and different configurations, methods, steps, shapes, materials, and numerical values, etc., may be used as needed. Specifically, the magnetic recording medium of the present disclosure may include components other than the substrate, underlayer, magnetic layer, back layer, and barrier layer. Furthermore, the chemical formulas of compounds, etc., are representative, and are not limited to the valences, etc., described as long as they are general names of the same compounds.

[0263] Furthermore, the configurations, methods, steps, shapes, materials, numerical values, etc. of the above-described embodiments and their modified examples can be combined with one another without departing from the spirit of the present disclosure.

[0264] In addition, in the numerical ranges described in stages in this specification, the upper limit or lower limit of a numerical range in a certain stage may be replaced with the upper limit or lower limit of a numerical range in another stage. Unless otherwise specified, the materials exemplified in this specification can be used alone or in combination of two or more.

[0265] As explained above, according to the magnetic recording medium as an embodiment of the present disclosure, the maximum step height of the step height closest to the connection between the leader tape and the magnetic recording tape among the multiple step heights that appear on the leader tape after running under the predetermined conditions 1 to 3 is set to 34 μm or less. This allows for smooth operation of recording information to and reading information from the magnetic recording tape without impeding the operation.

[0266] Note that the effects of the present disclosure are not limited to these, and may be any of the effects described in this specification. Furthermore, the present technology may have the following configurations. (1) a longitudinally extending magnetic recording tape; a leader tape connected to the magnetic recording tape in the longitudinal direction; and Of the multiple step portions that occur in the leader tape after running in accordance with the following conditions 1 to 3, the maximum step portion closest to the connection between the leader tape and the magnetic recording tape is 34 μm or less in the thickness direction of the leader tape. Magnetic recording media. Condition 1: The environment must be at a temperature of 23°C and a relative humidity of 45%RH. Condition 2: Use a drive that complies with the LTO9 standard. Condition 3: 140 round trips recording and playing back 18 terabytes of data. (2) Further, a splicing tape is provided on the connection portion, The leader tape and the magnetic recording tape are connected by the splicing tape. The magnetic recording medium according to (1) above. (3) The average thickness of the leader tape and the average thickness of the magnetic recording tape are both thinner than the average thickness of the splicing tape. The magnetic recording medium according to (2) above. (4) The average thickness of the splicing tape is 5 μm or more and 24 μm or less. The magnetic recording medium according to (3) above. (5) The average thickness of the leader tape is greater than the average thickness of the magnetic recording tape. The magnetic recording medium according to (3) or (4) above. (6) The average thickness of the leader tape is 5.0 μm or more and 18.0 μm or less, and the average thickness of the magnetic recording tape is 5.2±0.3 μm. The magnetic recording medium according to (5) above. (7) The length of the leader tape is 4500 mm or less. The magnetic recording medium according to (6) above. (8) The amount of dimensional change Δw in the width direction of the magnetic recording tape in response to the change in tension in the longitudinal direction is 700 [ppm / N]≦Δw The magnetic recording medium according to any one of (1) to (7) above. (9) Reel and a tape-shaped magnetic recording medium wound on the reel; a housing that houses the magnetic recording medium; Equipped with The magnetic recording medium is a longitudinally extending magnetic recording tape; a leader tape connected to the magnetic recording tape in the longitudinal direction; and Of the multiple step portions that occur in the leader tape after running in accordance with the following conditions 1 to 3, the maximum step portion closest to the connection between the leader tape and the magnetic recording tape is 34 μm or less in the thickness direction of the leader tape. Magnetic recording medium cartridge. Condition 1: The environment must be at a temperature of 23°C and a relative humidity of 45%RH. Condition 2: Use a drive that complies with the LTO9 standard. Condition 3: 140 round trips recording and playing back 18 terabytes of data.

[0267] This application claims priority based on Japanese Patent Application No. 2021-130332, filed on August 6, 2021, with the Japan Patent Office, the entire contents of which are incorporated herein by reference.

[0268] Those skilled in the art will recognize that various modifications, combinations, subcombinations, and variations may occur depending on design requirements and other factors, and are intended to be within the scope of the appended claims and their equivalents.

Claims

1. a longitudinally extending magnetic recording tape; a leader tape connected to the magnetic recording tape in the longitudinal direction; and Among a plurality of step portions that occur in the leader tape after running in accordance with the following conditions 1 to 3, the maximum step portion closest to the connection portion between the leader tape and the magnetic recording tape is 34 μm or less in the thickness direction of the leader tape, the leader tape has a laminated structure including a substrate, an underlayer, a magnetic layer, and a backing layer in this order; the thickness of the substrate is 3.0 μm or more and 15.0 μm or less, the thickness of the underlayer is 0.6 μm or more and 3.0 μm or less, the thickness of the magnetic layer is 0.05 μm or more and 0.30 μm or less, the thickness of the back layer is 0.2 μm or more and 1.0 μm or less; the difference between the average thickness of the leader tape and the average thickness of the magnetic recording tape is 12 μm or less; The length of the leader tape is more than 900 mm and not more than 4500 mm. Magnetic recording media. Condition 1: An environment with a temperature of 23°C and a relative humidity of 45% RH. Condition 2: Use a drive that complies with the LTO9 standard. Condition 3: 140 round trips recording and reproducing 18 terabytes of data.

2. Further, a splicing tape is provided on the connection portion, The leader tape and the magnetic recording tape are connected by the splicing tape.

2. The magnetic recording medium according to claim 1.

3. The average thickness of the leader tape and the average thickness of the magnetic recording tape are both thinner than the average thickness of the splicing tape.

3. The magnetic recording medium according to claim 2.

4. The average thickness of the splicing tape is 5 μm or more and 24 μm or less.

4. The magnetic recording medium according to claim 3.

5. The average thickness of the leader tape is greater than the average thickness of the magnetic recording tape.

4. The magnetic recording medium according to claim 3.

6. The average thickness of the leader tape is 5.0 μm or more and 18.0 μm or less, and the average thickness of the magnetic recording tape is 5.2±0.3 μm.

6. The magnetic recording medium according to claim 5.

7. The amount of dimensional change Δw in the width direction of the magnetic recording tape in response to the change in tension in the longitudinal direction is 700 [ppm / N]≦Δw.

2. The magnetic recording medium according to claim 1.

8. Reel and a tape-shaped magnetic recording medium wound on the reel; a housing that houses the magnetic recording medium; Equipped with The magnetic recording medium is a longitudinally extending magnetic recording tape; a leader tape connected to the magnetic recording tape in the longitudinal direction; and Among a plurality of step portions that occur in the leader tape after running in accordance with the following conditions 1 to 3, the maximum step portion closest to the connection portion between the leader tape and the magnetic recording tape is 34 μm or less in the thickness direction of the leader tape, the leader tape has a laminated structure including a substrate, an underlayer, a magnetic layer, and a backing layer in this order; the thickness of the substrate is 3.0 μm or more and 15.0 μm or less, the thickness of the underlayer is 0.6 μm or more and 3.0 μm or less, the thickness of the magnetic layer is 0.05 μm or more and 0.30 μm or less, the thickness of the back layer is 0.2 μm or more and 1.0 μm or less; the difference between the average thickness of the leader tape and the average thickness of the magnetic recording tape is 12 μm or less; The length of the leader tape is more than 900 mm and not more than 4500 mm. Magnetic recording medium cartridge. Condition 1: An environment with a temperature of 23°C and a relative humidity of 45% RH. Condition 2: Use a drive that complies with the LTO9 standard. Condition 3: 140 round trips recording and reproducing 18 terabytes of data.

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