magnetic recording media

A magnetic recording medium with controlled protrusion heights and densities in its magnetic layer addresses friction and abrasive power issues, maintaining stability and accuracy in magnetic tapes for data archiving.

JP7736058B2Active Publication Date: 2025-09-09SONY GROUP CORP
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Patent Information

Application Number
JP2023510592
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-31
Filing Date
2022-02-08
Publication Date
2025-09-09
Estimated Expiration
2042-02-08

AI Technical Summary

Technical Problem

Magnetic tapes used for archiving in data centers face issues with increased frictional force leading to reading errors and servo signal misinterpretation due to multiple runs, along with a decrease in abrasive power, which affects stability and reliability.

Method used

A magnetic recording medium with a magnetic layer containing conductive first particles and abrasive second particles, forming protrusions with controlled height ratios and densities, to maintain low friction and abrasive force even after multiple runs.

Benefits of technology

The solution effectively reduces frictional force and maintains abrasive power, ensuring stable operation and accurate servo signal reading, enhancing the reliability and durability of magnetic tapes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The purpose of the present invention is to provide a magnetic recording medium that, by adjusting the height of protrusions formed by first particles having conductivity and second particles having a Mohs hardness of 7 or more, is capable of maintaining appropriate abrasivity relative to a magnetic head, producing little increase in wear caused by to multiple passes. Provided is a magnetic recording medium that has a magnetic layer including a magnetic powder. The magnetic layer contains first particles having conductivity and second particles having a Mohs hardness of 7 or more. Protrusions are formed on the surface on the magnetic layer side by the first particles and the second particles. The ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles and the average height (H2) of the protrusions formed by the secondary particles is 2.3 or less. The average height (H2) of the protrusions formed by the second particles is 7 nm or less.
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Description

[Technical Field]

[0001] The present technology relates to magnetic recording media. [Background technology]

[0002] With the development of IoT, big data, and artificial intelligence, the amount of data collected and stored is increasing dramatically. Magnetic recording media are often used as a medium for recording large amounts of data.

[0003] Various technologies have been proposed for magnetic recording media. For example, Patent Document 1 listed below describes a tape having a multi-layer structure including at least a magnetic layer, the total thickness of the tape being 5.6 μm or less, a plurality of recesses being arranged on the surface of the magnetic layer, the value obtained by dividing the depth D1 of the recesses by the thickness D2 of the magnetic layer being 15% or more, the magnetic layer being perpendicularly oriented, the degree of perpendicular orientation under the condition without demagnetizing field correction being 65% or more, and a plurality of recesses being formed in the magnetic layer, each recess being 20% ​​or more of the thickness of the magnetic layer, and the number of the recesses being 6,400 μm or more of the magnetic layer. 2 55 or more per surface area of ​​magnetic recording tape is disclosed. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2019 / 159465 Summary of the Invention [Problem to be solved by the invention]

[0005] In recent years, magnetic tape (magnetic recording media) has come to be used for archiving purposes in data centers. Accordingly, the demand for reliability of magnetic tape has also increased. It is particularly important that magnetic tape can run stably even after multiple runs.

[0006] Furthermore, while data tracks are becoming narrower as magnetic tape capacity increases, it is undesirable for servo signals to be read incorrectly.The increase in frictional force on the magnetic tape caused by multiple runs of the magnetic tape can lead to errors in reading the servo signals, which is undesirable for magnetic recording.

[0007] Furthermore, if the frictional force of the magnetic tape is high, a stick-slip phenomenon may occur. This phenomenon may result in deviations in the running speed of the magnetic tape. Furthermore, if the frictional force is high, the tape may also move when the magnetic head is moved laterally to correct the servo position, which may prevent immediate correction of the servo position.

[0008] It is also important to maintain the abrasive power of the magnetic tape, for example, to clean off any deposits on the magnetic head. Running the magnetic tape multiple times can also cause a decrease in the abrasive power of the magnetic tape against the magnetic head.

[0009] To prevent the increase in frictional force during magnetic tape running, it is conceivable to use, for example, a solid lubricant component (such as carbon particles that act as a solid lubricant). Also, for magnetic head cleaning, it is conceivable to use a component with an abrasive effect (and even an anchoring effect) (such as particles with a high Mohs hardness, particularly alumina). It is conceivable that a combination of these two components can be included in the magnetic tape (e.g., the magnetic layer) to prevent the increase in frictional force and clean the magnetic head.

[0010] The main objective of this technology is to provide a magnetic recording medium with high recording density that can prevent an increase in frictional force even after multiple runs. Furthermore, in addition to preventing the increase in frictional force, the technology also aims to maintain abrasive force even after multiple runs. [Means for solving the problem]

[0011] This technology is a magnetic layer containing magnetic powder; the magnetic layer contains first particles having electrical conductivity and second particles having a Mohs hardness of 7 or more, protrusions are formed on the surface of the magnetic layer side by the first particles and the second particles, the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles is 2.3 or less, and The magnetic recording medium has an average height (H2) of the protrusions formed by the second particles of 7 nm or less. The first particles may be carbon particles. The second particles may be inorganic particles. The second particles may be alumina particles. The magnetic powder may have at least one of a plate-like, spherical, and rectangular shape. The number of protrusions formed by the second particles on the surface on the magnetic layer side is determined by the unit area (μm 2 ) can be two or more per On the surface facing the magnetic layer, the ratio of the second particles that form protrusions with a height of 10 nm or more to the second particles that form protrusions with a height of 4 nm or more can be 20% or less. The number of protrusions formed by the first particles on the surface on the magnetic layer side is determined by the unit area (μm 2 ) may be 0.3 or more and 1.9 or less. On the surface facing the magnetic layer, the ratio of the first particles that form protrusions with a height of 10 nm or more to the first particles that form protrusions with a height of 4 nm or more can be 60% or less. The average thickness (average total thickness) can be 5.7 μm or less. The magnetic layer may have an average thickness of 0.08 μm or less. The abrasivity of the AlTiC square pillars can satisfy the following relation: 12.5≦Abrasivity≦20 This technology is a magnetic layer containing magnetic powder; the magnetic layer contains first particles having electrical conductivity and second particles having a Mohs hardness of 7 or more, protrusions are formed on the surface of the magnetic layer side by the first particles and the second particles, the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles is 2.3 or less, and The magnetic recording medium has an average height (H1) of protrusions formed by the first particles of 12 nm or less. The present technology provides a magnetic recording cartridge in which the magnetic recording medium is housed in a case while being wound around a reel. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a cross-sectional view showing the configuration of a magnetic recording medium according to a first embodiment. [Figure 2] FIG. 1 is a schematic diagram showing the configuration of a dedicated jig for abrasiveness measurement. [Figure 3] Schematic diagram showing an abrasive bar. [Figure 4] This is a schematic diagram showing the amount of wear (abrasion) of the abrasive bar. [Figure 5] FIG. 1 is a schematic diagram showing the configuration of a recording / reproducing device. [Figure 6] FIG. 10 is a cross-sectional view showing the configuration of a magnetic recording medium according to a modified example. [Figure 7] FIG. 2 is an exploded perspective view showing an example of the configuration of a magnetic recording cartridge. [Figure 8] FIG. 2 is a block diagram showing an example of the configuration of a cartridge memory. [Figure 9] FIG. 10 is an exploded perspective view showing an example of the configuration of a modified magnetic recording cartridge. [Figure 10] 3A and 3B are diagrams illustrating examples of servo patterns in a servo band. [Figure 11] FIG. 1 is a diagram for explaining a method for measuring PES. [Figure 12]FIG. 10 is a diagram for explaining correction of movement in the width direction of the tape. [Figure 13] FIG. 10 is a diagram showing the change over time in the standard deviation σPES, and a cross-sectional view schematically showing the change in the appearance of protrusions formed by carbon particles on the surface of the magnetic layer. [Figure 14] FIG. 10 is a graph showing the change in standard deviation σPES over time. [Figure 15] FIG. 10 is a graph showing the change in standard deviation σPES over time. [Figure 16] 1 is a diagram schematically showing the relationship between the magnetic head and protrusions formed by the first particles (carbon particles) P1 and the second particles (alumina particles) P2. FIG. [Figure 17] 1 is an image showing an example of a surface shape imaged by an AFM. [Figure 18] FIG. 10 is a diagram showing an example of a protrusion analysis result obtained by AFM. [Figure 19] FIG. 10 is a diagram showing an example of a protrusion height distribution measured by AFM. [Figure 20] This is an example of an FE-SEM image. [Figure 21] This is a composite image created by overlaying an AFM image and an FE-SEM image. [Figure 22] This is an enlarged view of a composite image obtained by superimposing an AFM image and an FE-SEM image. [Figure 23] FIG. 23 is a diagram showing an example of the results of AFM analysis of Line 1 in FIG. 22. [Figure 24] FIG. 3 is a diagram showing a cumulative frequency distribution of the height of protrusions formed by first particles (carbon black particles). [Figure 25] FIG. 10 is a diagram showing a cumulative frequency distribution of the height of protrusions formed by secondary particles (alumina particles). [Figure 26] FIG. 3 is a diagram showing a cumulative frequency distribution of the height of protrusions formed by first particles (carbon black particles) and a cumulative frequency distribution of the height of protrusions formed by second particles (alumina particles). [Figure 27] FIG. 2 is a diagram showing an example of the shape of a particle of magnetic powder. [Figure 28]1 is an example of a TEM photograph of a cross section of a sample. [Figure 29] 10 is another example of a TEM photograph of a cross section of a sample. DETAILED DESCRIPTION OF THE INVENTION

[0013] Preferred embodiments for carrying out the present technology will be described below. Note that the embodiments described below are representative embodiments of the present technology, and the scope of the present technology is not limited to these embodiments.

[0014] This technology will be described in the following order. 1. Description of this technology 2. First embodiment (1) Structure of magnetic recording medium (2) Explanation of each layer (3) Physical properties and structure (4) Manufacturing method of magnetic recording medium (5) Recording and playback device (6) Variations 3. Second embodiment (cartridge) (1) One embodiment of a magnetic recording cartridge (2) Modified magnetic recording cartridge 4. Working Example

[0015] In this specification, unless a measurement environment is specifically stated in the description of the measurement method, the measurement is performed in an environment of 25°C ± 2°C and 50% RH ± 5% RH.

[0016] 1. Description of this technology

[0017] The inventors have discovered that an increase in frictional force can be prevented by adjusting the height of the protrusions formed by the first particles and the height of the protrusions formed by the second particles, as described below. The inventors have also discovered that the abrasive force can be maintained. For example, the first particles may be conductive particles that have the effect of a solid lubricant. The second particles may be particles with a high Mohs hardness, which can provide abrasive and anchoring effects, and can also provide a magnetic head cleaning effect. Furthermore, adjusting the number of protrusions and the composition ratio of the protrusions in addition to the height of the protrusions is also desirable to achieve the effects of the present technology.

[0018] Specifically, a magnetic recording medium according to the present technology has a magnetic layer containing magnetic powder, the magnetic layer containing conductive first particles and second particles having a Mohs hardness of 7 or greater. The first particles are conductive and may function as a solid lubricant. The second particles have a Mohs hardness of 7 or greater, preferably 9 or greater, and may have abrasive and anchoring effects. The first and second particles form protrusions on the surface of the magnetic layer, and the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles may be 2.3 or less, preferably 2.1 or less, more preferably 1.9 or less, even more preferably 1.7 or less, and even more preferably 1.6 or less. Having the protrusion average height ratio (H1 / H2) of the magnetic recording medium within the above range reduces friction increase due to repeated runs and contributes to maintaining an appropriate abrasive force against the head. The method for measuring the average height (H1) of the protrusions of the primary particles and the average height (H2) of the protrusions of the secondary particles will be described below in 2.(3).

[0019] The lower limit of the ratio of the average heights of the protrusions (H1 / H2) is not particularly limited, but may be, for example, 1.0 or more, preferably 1.1 or more, and more preferably 1.2 or more.

[0020] In the magnetic recording medium according to the present technology, the average height (H1) of the protrusions formed by the first particles may be 12 nm or less, preferably 11.5 nm or less, more preferably 10.5 nm or less, even more preferably 9.5 nm or less, and even more preferably 8.5 nm or less. When the magnetic recording medium has an average height (H1) of the protrusions formed by the first particles within the above numerical range, friction increase due to multiple runs is reduced, contributing to the ability to appropriately maintain the abrasive force against the head.

[0021] Furthermore, the lower limit of the average height (H1) of the protrusions formed by the primary particles is not particularly limited, but may be, for example, preferably 5.0 nm or more, more preferably 5.5 nm or more, and even more preferably 6.0 nm or more.

[0022] In the magnetic recording medium according to the present technology, the average height (H2) of the protrusions formed by the second particles may be 7 nm or less, preferably 6.5 nm or less, more preferably 6.0 nm or less, even more preferably 5.5 nm or less, and even more preferably 5.3 nm or less. When the magnetic recording medium has an average height (H2) of the protrusions formed by the second particles within the above numerical range, friction increase due to multiple runs is reduced, contributing to the ability to properly maintain the abrasive force against the magnetic head.

[0023] Furthermore, the lower limit of the average height (H2) of the protrusions formed by the secondary particles is not particularly limited, but may be, for example, preferably 2.0 nm or more, more preferably 2.5 nm or more, and even more preferably 3.0 nm or more.

[0024] Furthermore, the number of protrusions formed by the first particles on the surface on the magnetic layer side is determined based on the unit area (μm 2 The number of protrusions formed by the primary particles may be preferably 0.3 or more and 1.9 or less, more preferably 0.4 or more and 1.8 or less, even more preferably 0.5 or more and 1.7 or less, and even more preferably 0.6 or more and 1.6 or less per particle. A method for measuring the number of protrusions formed by the primary particles will be described below in 2.(3).

[0025] On the surface of the magnetic layer side, the ratio of the first particles forming protrusions with a height of 10 nm or more to the first particles forming protrusions with a height of 4 nm or more can be preferably 60% or less, more preferably 50% or less, even more preferably 40% or less, and even more preferably 30% or less. A method for measuring the ratio of the first particles will be described below in 2.(3).

[0026] The number of protrusions formed by the second particles on the surface on the magnetic layer side is determined by the unit area (μm 2 The number of protrusions formed by the primary particles may be two or more per particle. A method for measuring the number of protrusions formed by the primary particles will be described below in 2.(3).

[0027] On the surface of the magnetic layer, the ratio of the second particles forming protrusions with a height of 10 nm or more to the second particles forming protrusions with a height of 4 nm or more can be 20% or less, preferably 18% or less, more preferably 16% or less, and even more preferably 14% or less. The lower limit of the ratio of the second particles is not particularly limited, but is preferably 0% or more. A method for measuring the ratio of the second particles will be described below in 2.(3).

[0028] The magnetic recording medium according to the present technology is preferably a long magnetic recording medium, and may be, for example, a magnetic recording tape (particularly a long magnetic recording tape).

[0029] A magnetic recording medium according to the present technology may include a magnetic layer, a non-magnetic layer (underlayer), a base layer, and a back layer in this order, and may also include other layers in addition to these layers. The other layers may be selected appropriately depending on the type of magnetic recording medium. The magnetic recording medium is a coating-type magnetic recording medium. For layers included in the magnetic recording medium other than the above four layers, please refer to the descriptions thereof.

[0030] In the magnetic recording medium according to the present technology, the abrasivity of the AlTiC rectangular pillars can be preferably 12.5 or more, more preferably 13.0 or more, even more preferably 14.0 or more, and even more preferably 15.0 or more, from the viewpoints of improving the polishing force, cleaning the deposits on the magnetic head, and suppressing an increase in friction with the magnetic head. The method for measuring the abrasivity of the AlTiC rectangular pillars will be explained below in 2.(3).

[0031] The abrasivity of the AlTiC rectangular pillars is preferably 20 or less, more preferably 19 or less, even more preferably 18 or less, and even more preferably 17 or less, in order to prevent excessive abrasive force from causing wear on the magnetic head and leading to destruction of the magnetic head.

[0032] Furthermore, the abrasivity of the AlTiC rectangular pillars can preferably satisfy the following relational expression. 12.5≦Abrasivity≦20 Furthermore, the abrasivity of the AlTiC rectangular pillars more preferably satisfies the following relational expression. 13.0≦Abrasivity≦19 Furthermore, the abrasivity of the AlTiC rectangular pillars more preferably satisfies the following relational expression. 14.0≦Abrasivity≦18 Furthermore, the abrasivity of the AlTiC rectangular pillars more preferably satisfies the following relational expression. 15.0≦Abrasivity≦17

[0033] The average thickness (average total thickness) of the magnetic recording medium according to the present technology is t Tmay be, for example, 5.7 μm or less, preferably 5.6 μm or less, 5.5 μm or less, 5.4 μm or less, 5.3 μm or less, more preferably 5.2 μm or less, 5.0 μm or less, even more preferably 4.6 μm or less, and even more preferably 4.4 μm or less. Because the magnetic recording medium is so thin, for example, the length of tape wound into one magnetic recording cartridge can be made longer, thereby increasing the recording capacity per magnetic recording cartridge. The average thickness (average total thickness) t of the magnetic recording medium T The lower limit of t is not particularly limited, but for example, 3.5 μm≦t T is.

[0034] The average thickness t of the magnetic layer of the magnetic recording medium according to the present technology m The average thickness t of the magnetic layer is preferably 0.08 μm or less, more preferably 0.07 μm or less, even more preferably 0.06 μm or less, 0.05 μm or less, and even more preferably 0.04 μm or less. m Although there are no particular restrictions on the lower limit, it is preferably 0.03 μm or more. The method for measuring the average thickness of the magnetic layer will be explained below in 2.(3).

[0035] The average thickness of the nonmagnetic layer (average thickness of the underlayer) of the magnetic recording medium according to the present technology is preferably 1.2 μm or less, more preferably 1.0 μm or less, 0.9 μm or less, 0.8 μm or less, or 0.7 μm or less, and even more preferably 0.6 μm or less. The lower limit of the average thickness of the nonmagnetic layer is not particularly limited, but is preferably 0.2 μm or more, more preferably 0.3 μm or more. The method for measuring the average thickness of the nonmagnetic layer will be described below in 2.(3).

[0036] The average thickness of the base layer of the magnetic recording medium according to the present technology can be preferably 4.5 μm or less, more preferably 4.2 μm or less, 4.0 μm or less, 3.6 μm or less, and even more preferably 3.0 μm or less. The method for measuring the average thickness of the base layer will be explained in 2.(3) below.

[0037] The average thickness of the back layer of the magnetic recording medium according to the present technology is preferably 0.6 μm or less, more preferably 0.5 μm or less, and even more preferably 0.4 μm or less, 0.3 μm or less, or 0.25 μm or less. The method for measuring the average thickness of the back layer will be explained in 2.(3) below.

[0038] The average particle volume of the magnetic powder contained in the magnetic recording medium of this technology is 2600 nm 3 less than 2000 nm, preferably 3 or less, and more preferably 1600 nm 3 or less. When the average particle volume is within the above numerical range, the electromagnetic conversion characteristics are improved. Despite the fact that the average particle volume of the magnetic powder contained in the magnetic recording medium of the present technology is very small, the magnetic recording medium of the present technology has excellent thermal stability as described above. While it is difficult to achieve both electromagnetic conversion characteristics and thermal stability, the present technology can improve both. The average particle volume of the magnetic powder is, for example, 500 nm 3 Above 700nm, especially 3 The method for measuring the average particle volume of the magnetic powder will be explained below in 2.(3).

[0039] In the present technology, the squareness ratio in the perpendicular direction can be preferably 65% ​​or more, more preferably 67% or more, and even more preferably 70% or more. By having the squareness ratio within the above numerical range, the perpendicular orientation of the magnetic powder is sufficiently high, resulting in a superior cNR. Therefore, superior electromagnetic conversion characteristics can be obtained. The method for measuring the squareness ratio in the perpendicular direction will be described below in 2.(3).

[0040] A magnetic recording medium according to the present technology may have, for example, at least one data band and at least two servo bands. The number of data bands may be, for example, 2 to 10, particularly 3 to 6, and more particularly 4 or 5. The number of servo bands may be, for example, 3 to 11, particularly 4 to 7, and more particularly 5 or 6. These servo bands and data bands may be arranged, for example, so as to extend in the longitudinal direction of a long magnetic recording medium (particularly a magnetic recording tape), particularly so as to be substantially parallel. The data band and the servo band may be provided on the magnetic layer. An example of a magnetic recording medium having such a data band and servo band is a magnetic recording tape conforming to the LTO (Linear Tape-Open) standard. That is, the magnetic recording medium according to the present technology may be a magnetic recording tape conforming to the LTO standard. For example, the magnetic recording medium according to the present technology may be a magnetic recording tape conforming to the LTO8 standard or later (e.g., LTO9, LTO10, LTO11, or LTO12). The width of a long magnetic recording medium (particularly a magnetic recording tape) according to the present technology can be, for example, 5 mm to 30 mm, particularly 7 mm to 25 mm, more particularly 10 mm to 20 mm, and even more particularly 11 mm to 19 mm. The length of a long magnetic recording medium (particularly a magnetic recording tape) can be, for example, 500 m to 1500 m. For example, a tape conforming to the LTO8 standard has a width of 12.65 mm and a length of 960 m.

[0041] 2. First embodiment

[0042] (1) Structure of magnetic recording medium First, the configuration of a magnetic recording medium 10 according to the first embodiment will be described with reference to Fig. 1. The magnetic recording medium 10 is, for example, a magnetic recording medium that has been subjected to a perpendicular orientation process, and as shown in Fig. 1, includes a long base layer (also referred to as a substrate) 11, a non-magnetic layer (also referred to as an underlayer) 12 provided on one major surface of the base layer 11, a magnetic layer (also referred to as a recording layer) 13 provided on the non-magnetic layer 12, and a back layer 14 provided on the other major surface of the base layer 11. Hereinafter, of the two major surfaces of the magnetic recording medium 10, the surface on which the magnetic layer 13 is provided will be referred to as the magnetic surface, and the surface opposite to the magnetic surface (the surface on which the back layer 14 is provided) will be referred to as the back surface.

[0043] The magnetic recording medium 10 has an elongated shape and runs in the longitudinal direction during recording and reproduction. The magnetic recording medium 10 may be configured to record signals at a minimum 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, and may be used, for example, in a recording and reproduction device whose minimum recording wavelength is within the above range. This recording and reproduction device may be equipped with a ring-type head as a recording head. The recording track width is, for example, 2 μm or less.

[0044] (2) Explanation of each layer

[0045] (base layer)

[0046] The base layer 11 can function as a support for the magnetic recording medium 10 and can be, for example, a flexible, long, non-magnetic substrate, particularly a non-magnetic film. The average thickness of the base layer 11 is, for example, preferably 4.5 μm or less, more preferably 4.2 μm or less, and can be 4.0 μm or less, 3.6 μm or less, and even more preferably 3.0 μm or less. The lower limit of the average thickness of the base layer 11 can be determined, for example, from the viewpoint of film production limitations or the function of the base layer 11. The base layer 11 can contain, for example, at least one of polyester resins, polyolefin resins, cellulose derivatives, vinyl resins, aromatic polyether ketone resins, and other polymer resins. When the base layer 11 contains two or more of the above materials, the two or more materials may be mixed, copolymerized, or laminated.

[0047] The polyester resin may be, for example, one or a mixture of two or more of PET (polyethylene terephthalate), PEN (polyethylene naphthalate), PBT (polybutylene terephthalate), PBN (polybutylene naphthalate), PCT (polycyclohexylene dimethylene terephthalate), PEB (polyethylene-p-oxybenzoate), and polyethylene bisphenoxycarboxylate. According to a preferred embodiment of the present technology, the base layer 11 may be formed from PET or PEN.

[0048] The polyolefin resin may be, for example, one or a mixture of two or more of PE (polyethylene) and PP (polypropylene).

[0049] The cellulose derivative may be, for example, one or a mixture of two or more of cellulose diacetate, cellulose triacetate, CAB (cellulose acetate butyrate), and CAP (cellulose acetate propionate).

[0050] The vinyl resin may be, for example, one or a mixture of two or more of PVC (polyvinyl chloride) and PVDC (polyvinylidene chloride).

[0051] The aromatic polyetherketone resin may be, for example, one or a mixture of two or more of PEK (polyetherketone), PEEK (polyetheretherketone), PEKK (polyetherketoneketone), and PEEKK (polyetheretherketoneketone). According to a preferred embodiment of the present technology, the base layer 11 may be formed from PEEK.

[0052] The other polymer resin may be, for example, one or a mixture of two or more 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, polyetherester, PES (polyethersulfone), PEI (polyetherimide), PSF (polysulfone), PPS (polyphenylene sulfide), PC (polycarbonate), PAR (polyarylate), and PU (polyurethane).

[0053] (magnetic layer)

[0054] The magnetic layer 13 may be, for example, a perpendicular recording layer. The magnetic layer 13 contains magnetic powder. In addition to the magnetic powder, the magnetic layer 13 contains first particles having electrical conductivity and second particles having a Mohs hardness of 7 or more. The magnetic layer 13 may also contain, for example, a binder. The magnetic layer 13 may also contain additives such as a lubricant and a rust inhibitor, as necessary.

[0055] The average thickness t of the magnetic layer 13 m The average thickness t of the magnetic layer 13 is preferably 0.08 μm or less, more preferably 0.07 μm or less, and even more preferably 0.06 μm or less, 0.05 μm or less, or 0.04 μm or less. mThe lower limit of the average thickness t of the magnetic layer 13 is not particularly limited, but is preferably 0.03 μm or more. m Being within the above range contributes to improving the electromagnetic conversion characteristics.

[0056] The magnetic layer 13 is preferably a magnetic layer that is perpendicularly oriented. In this specification, perpendicular orientation means that the squareness ratio S1 measured in the longitudinal direction (travel direction) of the magnetic recording medium 10 is 35% or less. The magnetic layer 13 may be an in-plane oriented (longitudinal oriented) magnetic layer. That is, the magnetic recording medium 10 may be a horizontal recording type magnetic recording medium. However, from the viewpoint of achieving high recording density, a perpendicular orientation is more preferable.

[0057] (magnetic powder)

[0058] Examples of magnetic particles constituting the magnetic powder contained in the magnetic layer 13 include, but are not limited to, epsilon iron oxide (ε iron oxide), gamma hematite, magnetite, chromium dioxide, cobalt-coated iron oxide, hexagonal ferrite, barium ferrite (BaFe), Co ferrite, strontium ferrite, and metals. The magnetic powder may be one of these, or a combination of two or more of these. Particularly preferably, the magnetic powder may contain ε iron oxide magnetic powder, barium ferrite magnetic powder, cobalt ferrite magnetic powder, or strontium ferrite magnetic powder. The ε iron oxide may contain Ga and / or Al. These magnetic particles may be appropriately selected by those skilled in the art based on factors such as the manufacturing method of the magnetic layer 13, the tape specifications, and the tape functions.

[0059] The average particle size (average maximum particle size) D of the magnetic powder can be preferably 22 nm or less, more preferably 8 nm or more and 22 nm or less, and even more preferably 10 nm or more and 20 nm or less.

[0060] The average particle size D of the magnetic powder is determined as follows. First, the magnetic recording medium 10 to be measured is processed by a FIB (Focused Ion Beam) method or the like to prepare a thin section, and the cross section of the thin section is observed by a TEM. Next, 500 ε-iron oxide particles are randomly selected from the TEM photograph, and the maximum particle size d of each particle is measured. max Measure the maximum particle size d of the magnetic powder. max The particle size distribution is calculated as follows: max " refers to the so-called maximum Feret diameter, specifically the maximum distance between two parallel lines drawn from any angle so as to be tangent to the contour of the ε-iron oxide particle. Then, the maximum particle size d max The maximum particle size d from the particle size distribution max The median diameter (50% diameter, D50) is determined and used as the average particle size (average maximum particle size) D of the magnetic powder.

[0061] The shape of the magnetic powder is preferably at least one of plate-like, spherical, and rectangular. The shape of the magnetic powder depends on the crystal structure of the magnetic particles. Examples of plate-like magnetic powder include BaFe and strontium ferrite, which have a hexagonal plate-like shape. Examples of spherical magnetic powder include ε-iron oxide. Examples of rectangular magnetic powder include cobalt ferrite, which has a cubic shape. These magnetic particles are oriented during the manufacturing process of the magnetic recording medium 10.

[0062] According to one preferred embodiment of the present technology, the magnetic powder may preferably comprise a powder of nanoparticles containing ε-iron oxide (hereinafter referred to as "ε-iron oxide particles"). ε-iron oxide particles can achieve high coercivity even in their fine size. It is preferable that the ε-iron oxide contained in the ε-iron oxide particles has a preferential crystal orientation in the thickness direction (perpendicular direction) of the magnetic recording medium 10.

[0063] The ε-iron oxide particles are spherical or nearly spherical, or cubic or nearly cubic. Because of the shape of the ε-iron oxide particles, when used as magnetic particles, the contact area between particles in the thickness direction of the medium can be reduced, and particle aggregation can be suppressed, compared to when hexagonal plate-shaped barium ferrite particles are used as magnetic particles. This improves the dispersibility of the magnetic powder, resulting in a better SNR (Signal-to-Noise Ratio).

[0064] The ε-iron oxide particles have a core-shell structure. Specifically, the ε-iron oxide particles have a core and a two-layer shell structure surrounding the core. The two-layer shell structure includes a first shell portion provided on the core and a second shell portion provided on the first shell portion.

[0065] The core portion contains ε-iron oxide. The ε-iron oxide contained in the core portion preferably has ε-Fe2O3 crystals as a main phase, and more preferably is composed of a single phase ε-Fe2O3.

[0066] The first shell portion covers at least a portion of the periphery of the core portion. Specifically, the first shell portion may cover a portion of the periphery of the core portion, or may cover the entire periphery of the core portion. From the viewpoint of ensuring sufficient exchange coupling between the core portion and the first shell portion and improving magnetic properties, it is preferable that the first shell portion covers the entire surface of the core portion.

[0067] The first shell portion is a so-called soft magnetic layer and may contain 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.

[0068] The second shell portion is an oxide coating serving as an anti-oxidation layer. The second shell portion may contain α-iron oxide, aluminum oxide, or silicon oxide. The α-iron oxide may contain, for example, at least one iron oxide selected from Fe3O4, Fe2O3, and FeO. When the first shell portion contains α-Fe (soft magnetic material), the α-iron oxide may be obtained by oxidizing the α-Fe contained in the first shell portion.

[0069] The presence of the first shell portion in the ε-iron oxide particles as described above ensures thermal stability, thereby maintaining a high coercivity Hc of the core portion alone and / or adjusting the coercivity Hc of the entire ε-iron oxide particle (core-shell particle) to a coercivity Hc suitable for recording. Furthermore, the presence of the second shell portion in the ε-iron oxide particles as described above prevents deterioration of the properties of the ε-iron oxide particles due to rust or other damage caused by exposure to air during or before the manufacturing process of the magnetic recording medium 10. Therefore, deterioration of the properties of the magnetic recording medium 10 can be suppressed.

[0070] The ε-iron oxide particles may have a shell part with a single layer structure. In this case, the shell part has the same structure as the first shell part. However, from the viewpoint of suppressing deterioration of the properties of the ε-iron oxide particles, it is more preferable that the ε-iron oxide particles have a shell part with a two-layer structure.

[0071] The ε-iron oxide particles may contain an additive instead of a core-shell structure, or may have a core-shell structure and contain an additive. In these cases, 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 is a metal element other than iron, preferably a trivalent metal element, more preferably one or more selected from the group consisting of aluminum (Al), gallium (Ga), and indium (In). Specifically, the ε-iron oxide containing additives is ε-Fe 2-x M xO3 crystal (wherein M is a metal element other than iron, preferably a trivalent metal element, more preferably one or more selected from the group consisting of Al, Ga, and In. x is, for example, 0 <x<1である。)である。

[0072] According to another preferred embodiment of the present technology, the magnetic powder may be barium ferrite (BaFe) 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 a high-temperature, high-humidity environment. From this perspective, the barium ferrite magnetic powder is preferable as the magnetic powder.

[0073] The average particle size of the barium ferrite magnetic powder may be 50 nm or less, more preferably 10 nm or more and 40 nm or less, and even more preferably 12 nm or more and 25 nm or less.

[0074] When the magnetic layer 13 contains barium ferrite magnetic powder as the magnetic powder, the average thickness t m [nm] is preferably 0.08 μm or less, more preferably 0.07 μm or less, and even more preferably 0.06 μm or less. The coercive force Hc measured in the thickness direction (perpendicular direction) of the magnetic recording medium 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.

[0075] According to yet another preferred embodiment of the present technology, the magnetic powder may be cobalt ferrite magnetic powder. The cobalt ferrite magnetic powder includes magnetic particles of iron oxide having cobalt ferrite as a main phase (hereinafter referred to as "cobalt ferrite magnetic particles"). The cobalt ferrite magnetic particles preferably have uniaxial anisotropy. The cobalt ferrite magnetic particles have, for example, a cubic or nearly cubic shape. The cobalt ferrite is cobalt ferrite containing Co. The cobalt ferrite may further include one or more elements selected from the group consisting of Ni, Mn, Al, Cu, and Zn in addition to Co.

[0076] Cobalt ferrite has, for example, an average composition represented by the following formula (1). Co x M y FeO z ···(1) (In formula (1), M is, for example, one or more metals 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, with the proviso that 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.)

[0077] The average particle size of the cobalt ferrite magnetic powder is preferably 25 nm or less, more preferably 23 nm or less. The coercive force Hc of the cobalt ferrite magnetic powder is preferably 2500 Oe or more, more preferably 2600 Oe or more and 3500 Oe or less.

[0078] According to yet another preferred embodiment of the present technology, the magnetic powder may include a powder of nanoparticles containing hexagonal ferrite (hereinafter referred to as "hexagonal ferrite particles"). The hexagonal ferrite particles have, for example, a hexagonal plate shape or an approximately hexagonal plate shape. The hexagonal ferrite may preferably contain at least one of Ba, Sr, Pb, and Ca, 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. More specifically, hexagonal ferrites have the general formula MFe 12 O 19 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, part of Fe may be substituted with another metal element. When the magnetic powder includes a powder of hexagonal ferrite particles, the average particle size of the magnetic powder may be preferably 50 nm or less, more preferably 10 nm or more and 40 nm or less, and even more preferably 15 nm or more and 30 nm or less.

[0079] (first particle)

[0080] The first particles are electrically conductive. The first particles may be fine particles primarily composed of carbon, preferably carbon particles, and examples of such carbon particles include carbon black. Examples of carbon black that may be used include Asahi #15 and #15HS from Asahi Carbon Co., Ltd. Hybrid carbon, in which carbon is attached to the surface of silica particles, may also be used.

[0081] (second particle)

[0082] The second particles may have a Mohs hardness of 7 or more, preferably 7.5 or more, more preferably 8 or more, and even more preferably 8.5 or more, from the viewpoint of suppressing deformation due to contact with a magnetic head. The Mohs hardness of the second particles may be preferably 9.5 or less, from the viewpoint of suppressing head wear. The second particles may be inorganic particles, such as α-alumina with an α-conversion rate of 90% or more, β-alumina, γ-alumina, silicon carbide, chromium oxide, cerium oxide, α-iron oxide, corundum, silicon nitride, titanium carbide, titanium oxide, silicon dioxide, tin oxide, magnesium oxide, tungsten oxide, zirconium oxide, boron nitride, zinc oxide, calcium carbonate, calcium sulfate, barium sulfate, molybdenum disulfide, acicular α-iron oxide obtained by dehydrating and annealing magnetic iron oxide raw materials, optionally surface-treated with aluminum and / or silica, and diamond powder. Alumina particles such as α-alumina, β-alumina, and γ-alumina, and silicon carbide are preferably used as the second particles. These secondary particles may have any shape such as needle, sphere, or cube, but those having corners in part of their shape are preferred because they have high abrasiveness.

[0083] (Average height of protrusions formed by the first particles and the second particles)

[0084] The first particles and the second particles each form protrusions on the surface of the magnetic layer. The ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles may be 2.3 or less, preferably 2.1 or less, more preferably 1.9 or less, even more preferably 1.7 or less, and even more preferably 1.6 or less. When the magnetic recording medium has an average protrusion height ratio (H1 / H2) within the above numerical range, friction increase (PES increase) due to multiple runs is reduced, contributing to the ability to appropriately maintain the abrasive force against the magnetic head.

[0085] The lower limit of the ratio of the average heights of the protrusions (H1 / H2) is not particularly limited, but may be, for example, preferably 1.0 or more, more preferably 1.1 or more, and even more preferably 1.2 or more.

[0086] The average height (H1) of the protrusions formed by the first particles may be 12 nm or less, preferably 11.5 nm or less, more preferably 10.5 nm or less, even more preferably 9.5 nm or less, and even more preferably 8.5 nm or less. When the magnetic recording medium has an average height (H1) of the protrusions formed by the first particles within the above numerical range, the spacing between the magnetic head and the magnetic recording medium is reduced, the occurrence of an increase in friction due to multiple runs is reduced, and the abrasive force against the magnetic head can be maintained appropriately.

[0087] Furthermore, the lower limit of the average height (H1) of the protrusions formed by the primary particles is not particularly limited, but may be, for example, preferably 5.0 nm or more, more preferably 5.5 nm or more, and even more preferably 6.0 nm or more.

[0088] The average height (H2) of the protrusions formed by the second particles may be 7 nm or less, preferably 6.5 nm or less, more preferably 6.0 nm or less, even more preferably 5.5 nm or less, and even more preferably 5.3 nm or less. When the magnetic recording medium has an average height (H2) of the protrusions formed by the second particles within the above numerical range, the spacing between the magnetic head and the magnetic recording medium is reduced, the occurrence of an increase in friction due to multiple runs is reduced, and the abrasive force against the magnetic head can be maintained appropriately.

[0089] Furthermore, the lower limit of the average height (H2) of the protrusions formed by the secondary particles is not particularly limited, but may be, for example, preferably 2.0 nm or more, more preferably 2.5 nm or more, and even more preferably 3.0 nm or more.

[0090] (Number of protrusions formed by primary particles per unit area)

[0091] Furthermore, the number of protrusions formed by the first particles on the surface on the magnetic layer side is determined based on the unit area (μm 2 ) may be preferably 0.3 or more and 1.9 or less, more preferably 0.4 or more and 1.8 or less, even more preferably 0.5 or more and 1.7 or less, and even more preferably 0.6 or more and 1.6 or less.

[0092] (Proportion of the first particles that form protrusions with a protrusion height of 10 nm or more)

[0093] On the surface facing the magnetic layer, the ratio of the first particles that form protrusions with a height of 10 nm or more to the first particles that form protrusions with a height of 4 nm or more can be preferably 60% or less, more preferably 50% or less, even more preferably 40% or less, and even more preferably 30% or less.

[0094] (Number of protrusions formed by secondary particles per unit area)

[0095] The number of protrusions formed by the second particles on the surface on the magnetic layer side is determined by the unit area (μm 2 ) can be two or more per

[0096] (Proportion of the second particles that form protrusions with a height of 10 nm or more)

[0097] On the surface facing the magnetic layer, the ratio of the second particles that form protrusions with a height of 10 nm or more to the second particles that form protrusions with a height of 4 nm or more can be 20% or less, preferably 18% or less, more preferably 16% or less, and even more preferably 14% or less. The lower limit of the ratio of the second particles that form protrusions with a height of 10 nm or more is not particularly limited, but can preferably be 0% or more.

[0098] (binder)

[0099] The binder is preferably a resin having a structure in which a crosslinking reaction has been imparted to a polyurethane resin or a vinyl chloride resin. However, the binder is not limited to these, and other resins may be appropriately blended depending on the physical properties required for the magnetic recording medium 10. The resin to be blended is not particularly limited as long as it is a resin that is generally used in coating-type magnetic recording media 10.

[0100] Examples of the binder 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, 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.

[0101] Furthermore, a thermosetting resin or a reactive resin may be used as the binder, and examples of such a resin include a phenolic resin, an epoxy resin, a urea resin, a melamine resin, an alkyd resin, a silicone resin, a polyamine resin, and a urea-formaldehyde resin.

[0102] 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 is a hydrogen atom or an alkali metal such as lithium, potassium, or sodium.

[0103] Furthermore, the polar functional groups include -NR1R2 and -NR1R2R3 + X - Side chain type with terminal group of >NR1R2 + X - In the formula, R1, R2, and R3 are hydrogen atoms or hydrocarbon groups, and X - is a halogen ion such as fluorine, chlorine, bromine, or iodine, or an inorganic or organic ion. Polar functional groups include —OH, —SH, —CN, and epoxy groups.

[0104] (additives)

[0105] 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.

[0106] (Nonmagnetic layer (base layer))

[0107] The non-magnetic layer (underlayer) 12 is a non-magnetic layer containing non-magnetic powder and a binder as its main components. The above description of the binder contained in the magnetic layer 13 also applies to the binder contained in the non-magnetic layer 12. The non-magnetic layer 12 may further contain at least one additive selected from the group consisting of first particles, a lubricant, a curing agent, and a rust inhibitor, as necessary.

[0108] The average thickness of the nonmagnetic layer 12 is preferably 1.2 μm or less, more preferably 1.0 μm or less, 0.9 μm or less, 0.8 μm or less, or 0.7 μm or less, and even more preferably 0.6 μm or less. There is no particular lower limit to the average thickness of the nonmagnetic layer 12, but it is preferably 0.2 μm or more, and more preferably 0.3 μm or more.

[0109] (Non-magnetic powder)

[0110] The non-magnetic powder contained in the non-magnetic layer 12 may include, for example, at least one type selected from inorganic particles and organic particles. 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 may include, for example, one or a combination of two or more types selected from metals, metal oxides, metal carbonates, metal sulfates, metal nitrides, metal carbides, and metal sulfides. More specifically, the inorganic particles may be, for example, one or two or more types selected from iron oxyhydroxide, hematite, titanium oxide, and carbon black. The shape of the non-magnetic powder may be, for example, acicular, spherical, cubic, plate-like, or other shapes, but is not particularly limited to these.

[0111] (Back layer)

[0112] The back layer 14 can contain a binder and a non-magnetic powder. The back layer 14 may also contain various additives such as a lubricant, a curing agent, and an antistatic agent as necessary. The above description of the binder and non-magnetic powder contained in the non-magnetic layer 12 also applies to the binder and non-magnetic powder contained in the back layer 14.

[0113] The average particle size of the inorganic particles contained in the 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 inorganic particles is determined in the same manner as the average particle size D of the magnetic powder described above.

[0114] The average thickness t of the back layer 14 b The average thickness t of the back layer 14 is preferably 0.6 μm or less, more preferably 0.5 μm or less, and even more preferably 0.4 μm or less, 0.3 μm or less, 0.25 μm or less, or 0.2 μm or less. b When the average thickness (average total thickness) t of the magnetic recording medium 10 is within the above range, T A T Even when the thickness is set to ≦5.7 μm, the average thickness of the nonmagnetic layer 12 and the base layer 11 can be kept large, thereby maintaining the running stability of the magnetic recording medium 10 within a recording / reproducing device.

[0115] (3) Physical properties and structure

[0116] (Protrusion height)

[0117] The heights of the protrusions formed by the first particles and the second particles are measured by performing shape analysis using an atomic force microscope (hereinafter referred to as an AFM) on the same location of the measurement sample, and by identifying components obtained by image analysis using brightness differences due to differences in the amount of secondary electron emission from the first particles and the second particles in FE-SEM images taken by a field emission scanning electron microscope (hereinafter referred to as an FE-SEM), as described below. The height of each protrusion can be measured using the AFM, and it can be determined whether each protrusion is formed by a first particle or a second particle using the FE-SEM. A composite image can be obtained by overlaying the image obtained by the AFM on the same location and the image obtained by the FE-SEM on the same region, and the type of particle forming each protrusion (whether it is a first particle or a second particle) can be associated with the height of each protrusion from the composite image. Below, we will explain how to measure the height of protrusions using AFM, how to identify the type of particles that form the protrusions using FE-SEM, and how to associate the height of the protrusions with the type of particles that form the protrusions.

[0118] (Method for measuring protrusion height using an atomic force microscope (AFM)) In this technique, the height of the protrusions formed by the first particles and the second particles is determined as follows. First, a measurement sample is prepared by cutting a portion of the magnetic recording medium 10 from the user data area (24 m or more from the leader pin) in an LTO cartridge to a size that fits on a sample stage for SEM observation. Next, markings are made on the surface of the measurement sample, avoiding the center of the measurement sample. Marking methods include forming linear or dot-shaped depressions on the magnetic recording medium 10 using a manipulator or a nine-denter, or forming protrusions on the magnetic recording medium 10 using silver paste or the like. Note that, since the AFM scans the marked area with a probe, depending on the condition of the marked area, the probe tip may become contaminated, making it difficult to obtain an accurate shape image. Therefore, it is preferable to make the markings small and shallow to prevent contamination of the probe. Next, the shape of the marked area on the surface of the measurement sample is analyzed using an AFM. Because the marked area is concave, measurements are made with the AFM at a field of view of 5 μm × 5 μm, with the marked area positioned as close to the edge of the field of view as possible. Note that protrusions around the marked area are excluded from the measurement. Next, measurements are performed over a 10 μm × 10 μm field of view, a marking is determined, and an unmarked portion is measured over a 5 μm × 5 μm field of view in accordance with the marking. The measurement conditions for the shape analysis are as follows: For each of the first and second particles, if 20 or more particles can be identified in one AFM field of view from a single measurement sample, one field of view is measured using the AFM. For each of the first and second particles, if fewer than 20 particles can be identified in one AFM field of view, multiple fields (e.g., 3 to 5) are measured from a single measurement sample. For each of the first and second particles, 20 points identified as particles are obtained through binarization processing, and the 20 AFM measurements are averaged, with the resulting average value being the protrusion height. The shape analysis can provide information on the surface shape, protrusion analysis, and protrusion height distribution. Figure 17 shows an example of an image of a surface shape captured by the AFM. Figure 18 shows an example of a protrusion analysis result obtained by the AFM. FIG. 19 is a diagram showing an example of the height distribution of the protrusions.Data such as the number of protrusions formed from the obtained information and the height of the protrusions formed by the particles can be obtained.

[0119] <AFM Measurement Conditions> Apparatus: AFM Dimension 3100 microscope (with NanoscopeIV controller) (Digital Instruments, USA) Measurement mode: Tapping Tapping frequency during tuning: 200 - 400 kHz Cantilever: SNL-10 (manufactured by Bruker) Scan size: 5μm × 5μm Scan rate: 1Hz Scan line: 256

[0120] <Calculation method of the reference plane when calculating the protrusion height> The AFM image is divided into 256 × 256 (= 65,536) measurement points, and the height Z(i) (i: measurement point number, i = 1 - 65,536) is measured at each measurement point. The heights Z(i) of the measured measurement points are simply averaged (arithmetic mean) to obtain the average height (reference plane) Z ave (=(Z(1) + Z(2) + ··· + Z(65,536)) / 65,536 ) is obtained.

[0121] (Method for identifying the type of particles forming protrusions using FE-SEM) The marked part of the measurement sample is imaged using a field emission scanning electron microscope (FE-SEM) under the FE-SEM measurement conditions described below to obtain a FE-SEM image. Figure A in Figure 20 is an example of a FE-SEM image. From the obtained FE-SEM image, the type of particles forming the protrusions can be identified by utilizing the luminance difference due to the difference in the secondary electron emission amounts of the first and second particles. The image processing for this identification will be described later. Also, the positions of the protrusions formed by the first and second particles in the FE-SEM image are identified.

[0122] <FE-SEM Measurement Conditions> Equipment: HITACHI S-4800 (Hitachi High-Technologies Corporation) Viewing angle: 5.1μm×3.8μm Accelerating voltage: 5 kV Measurement magnification: 25000x

[0123] The obtained FE-SEM image (Figure A in Figure 20) is binarized using the image processing software Image J under the two processing conditions described below. From the image obtained by the binarization process, information can be obtained about the number of protrusions formed by each of the primary particles and secondary particles, the average area per protrusion, the total area of ​​the protrusions, and the diameter of the protrusions (Feret diameter). Note that during the binarization process, the conditions are changed as follows for the high-brightness secondary particles (white areas in Figure A in Figure 20) and the low-brightness first particles (black areas in Figure A in Figure 20).

[0124] <Binarization processing conditions for obtaining information about the first particle>

[0125] Software: Image J Ver 1.44p Binarization threshold: Threshold(0.65) Binarization target size: 0.002μm-infinity

[0126] <Binarization processing conditions for obtaining information about secondary particles>

[0127] Software: Image J Ver 1.44p Binarization threshold: Threshold(220,255) Binarization target size: 0.001μm-infinity

[0128] Figure B in Figure 20 is an image showing the position distribution of protrusions formed by the secondary particles (alumina particles) obtained by binarizing the FE-SEM image of Figure A in Figure 20 under the binarization conditions for the secondary particles (alumina particles). The following information about the secondary particles was obtained from the resulting image.

[0129] <Information about the obtained second particle>

[0130] Quantity: 58 Average area: 0.003μm 2 Total area: 0.198 μm 2 Feret diameter: 0.091 μm

[0131] Figure C in Figure 20 is an image showing the position distribution of protrusions formed by the first particles (carbon black particles) obtained by binarizing the FE-SEM image of Figure A in Figure 20 under the binarization conditions for the first particles (carbon black particles). The following information about the first particles was obtained from the resulting image.

[0132] <Information about the first particle obtained>

[0133] Quantity: 55 Average area: 0.005μm 2 Total area: 0.262 μm 2 Feret diameter: 0.013 μm

[0134] (Method of Corresponding Protrusion Height to the Type of Particles That Form the Protrusions) The obtained AFM image is overlaid with the FE-SEM image before binarization to obtain a composite image. Using the composite image, the particles forming each protrusion are identified as either primary particles or secondary particles. For example, Figure C in Figure 21 is a composite image obtained by overlaying an AFM image (Figure B) and an FE-SEM image (Figure A) so that the positions of corresponding protrusions coincide. In Figure 21, different marks are applied to the positions of the protrusions formed by the first particles P1 and the second particles P2, which are present in the FE-SEM image (Figure A) before image composition, and which were determined by the binarization process, so that they can be distinguished from each other. Similarly, different marks are applied to the positions of the protrusions formed by the first particles (carbon black particles) P1 and the second particles (alumina particles) P2, which were determined by the binarization process, so that they can be distinguished from each other. From the composite image obtained by overlaying the AFM image (Figure B) and the FE-SEM image (Figure A) so that the positions of corresponding protrusions coincide, it is determined whether each protrusion was formed by the first particles P1 or the second particles P2. In Figure 21 (Figure B), the marked area was measured with an AFM at a field of view of 10 μm x 10 μm, and then the area without the marking was measured at a field of view of 5 μm x 5 μm, so the marking is not present in the image.

[0135] Next, the height of each protrusion in the composite image is measured using AFM analysis software (Software version 5.12 Rev.B for Dimension 3100, manufactured by Veeco). As described above, the type of particle forming each protrusion (whether it is a first particle or a second particle) is identified, and therefore the identified particle type is associated with the measured height. For example, Figure 22 is an enlarged view of a composite image obtained by superimposing an AFM image and an FE-SEM image. Figure 23 is a diagram showing the results of AFM analysis (protrusion height measurement results) for Line 1 (Line 1) set at an arbitrary position in Figure 22. As shown in Figure 23, the heights of the protrusions formed by the first particles (carbon black particles) and second particles (alumina particles) present on Line 1 can be identified. In this way, the height of each protrusion can be identified from the composite image and the AFM analysis results.

[0136] (average height of protrusions, average height ratio of protrusions, percentage of protrusions with a height of 10 nm or more)

[0137] From the information on the height of the protrusions obtained as described above, the average height of the protrusions formed by the first particles, the average height of the protrusions formed by the second particles, the average height ratio of the protrusions, and the proportion of the protrusions formed by the first particles having a height of 10 nm or more or the proportion of the protrusions formed by the second particles having a height of 10 nm or more are determined. The average height of the protrusions and the proportion of the protrusions formed by the particles having a height of 10 nm or more can be determined, for example, from the cumulative frequency distribution of the protrusions formed by each of the first particles or the second particles. For example, FIG. 24 is a diagram showing the cumulative frequency distribution of the height of protrusions formed by the first particles (carbon black particles). In FIG. 24, A indicates frequency and B indicates cumulative %. FIG. 24 shows that the average height of the protrusions formed by the first particles (carbon black particles) is 11.3 nm, and the proportion of protrusions having a height of 10 nm or more is 58%. FIG. 25 is a diagram showing the cumulative frequency distribution of the height of the protrusions formed by the second particles (alumina particles). In FIG. 25, A indicates frequency and B indicates cumulative %. FIG. 25 shows that the average height of the protrusions formed by the second particles (alumina particles) is 5.1 nm, and the proportion of protrusions having a height of 10 nm or more is 5.9%. FIGS. 24 and 25 show that the ratio of the average height of the protrusions formed by the first particles (carbon black particles) to the average height of the protrusions formed by the second particles (alumina particles) (average height of the protrusions formed by the first particles / average height of the protrusions formed by the second particles) is 2.21. FIG. 26 is a diagram showing the cumulative frequency distribution of the height of the protrusions formed by the first particles (carbon black particles) P1 and the height of the protrusions formed by the second particles (alumina particles) P2.

[0138] When measuring the height of the protrusions, the number of protrusions formed by each of the first particles and the second particles, the average area per protrusion, the total area of ​​the protrusions, the diameter of the protrusions (Feret diameter), the proportion of the first particles that form protrusions with a height of 10 nm or more, and the proportion of the second particles that form protrusions with a height of 10 nm or more are also measured.

[0139] (Abrasivity)

[0140] Abrasivity is measured in accordance with ECMA-319 Annex C. Note that abrasivity is measured using an abrasivity bar with the ceramic material changed to AlTiC. Abrasivity is an index of the degree of wear on the magnetic head caused by the magnetic surface of the magnetic tape as it contacts and runs against the magnetic head. For example, a square-shaped abrasivity bar (abrasivity bar) A made of ceramic material (AlTiC) as shown in Figure 3 is placed on the dedicated jig (as described in ECMA-319 Annex C) shown in Figure 2. The jig is attached to the magnetic head of a tape drive or other device so that the corners of the square bar come into contact with the magnetic tape. The magnetic tape is run for a specified time or number of passes. After the run, the width B of the worn abrasive bar is measured, as shown in Figure 4. The measured wear (amount of scraping) of the abrasive bar is used as an index of abrasivity. The greater the wear amount (amount of scraping), the better the abrasiveness and the greater the abrasive power. For example, abrasiveness is measured as follows.

[0141] A square-prism bar (abrasiveness bar) A made of ceramic material (AlTiC) shown in Figure 3 is set in the dedicated jig shown in Figure 2. Next, this square-prism bar is attached to the magnetic head of a tape drive or the like so that the corners of the bar come into contact with the magnetic tape. After that, the magnetic tape is run under the following conditions. Tape speed: 3.0 m / s Tension 1.0N±0.1N Wrap angle: 12°

[0142] The average wear pattern length of the abrasivity bar should preferably be 12.5 μm to 20 μm after running a new magnetic tape 100 times. When the same measurement is repeated on the same part of the magnetic tape, the wear pattern length should be within 30%. Measurements are performed in an environment with a temperature of 23°C ± 2°C and a humidity of 45% ± 5%. The average wear pattern length of the abrasivity bar on the leader tape should be within a maximum of 20 μm after running the magnetic tape 100 times. After running the magnetic tape 100 times, the amount of wear (abrasion) is measured. This measurement is defined as the abrasivity for 100 passes.

[0143] Then, replace the abrasive bar with a new one and use the magnetic tape after 100 passes. After 100 passes, measure the amount of wear (abrasion). This measurement is defined as the abrasiveness after 200 passes.

[0144] (Average thickness (average total thickness) of magnetic recording medium (magnetic tape)) T )

[0145] Average thickness (average total thickness) of magnetic tape T T The upper limit of the average thickness t of the magnetic tape T is preferably 5.2 μm or less, more preferably 5.0 μm or less, even more preferably 4.6 μm or less, and particularly preferably 4.4 μm or less. T If the average thickness t of the magnetic tape T is 5.2 μm or less, the recording capacity that can be recorded in one data cartridge can be increased compared to that of a general magnetic tape. T The lower limit is not particularly limited, but is, for example, 3.5 μm or more.

[0146] Average thickness t of magnetic tape T Tis obtained as follows. First, the magnetic tape T housed in the cartridge 10A is unwound, and the magnetic tape T is cut into a length of 250 mm at a position 30 m in the longitudinal direction from the joint between the magnetic tape T and the leader tape LT to prepare a sample. Next, the thickness of the sample is measured at five positions using a Mitutoyo Laser Hologram (LGH-110C) as a measuring device, and these measurements are simply averaged (arithmetic mean) to obtain the average thickness t T The five measurement positions are selected at random from the sample so that they are different positions in the longitudinal direction of the magnetic tape T.

[0147] (Average thickness of non-magnetic layer (underlayer))

[0148] The average thickness of the nonmagnetic layer 12 is determined as follows. First, the magnetic tape T housed in the cartridge 10A is unwound, and three samples of 250 mm are cut from the magnetic tape T at three locations, 10 m, 30 m, and 50 m from the connection between the magnetic tape T and the leader tape LT, to prepare three samples. Next, each sample is thinned using a FIB method or other processing. When using the FIB method, a carbon layer and a tungsten layer are formed as protective films as a pretreatment for observing the cross-sectional TEM images described below. The carbon layer is formed by vapor deposition on the surface of the magnetic tape T facing the magnetic layer 13 and the surface facing the back layer 14, and the tungsten layer is further formed by vapor deposition or sputtering on the surface facing the magnetic layer 13. The thinning is performed along the longitudinal direction of the magnetic tape T. That is, the thinning results in a cross section parallel to both the longitudinal direction and the thickness direction of the magnetic tape T.

[0149] The cross section of each of the obtained thinned samples is observed under a transmission electron microscope (TEM) under the following conditions. Apparatus: TEM (Hitachi H9000NAR) Accelerating voltage: 300 kV Magnification: 100,000x Next, using the obtained TEM image, the thickness of the non-magnetic layer 12 is measured at at least 10 positions in the longitudinal direction of the magnetic tape T, and then the measured values ​​are simply averaged (arithmetic averaged) to obtain the average thickness (μm) of the non-magnetic layer 12.

[0150] (average thickness of base layer)

[0151] The average thickness of the base layer 11 is determined as follows. First, the magnetic tape T housed in the magnetic recording cartridge 10A is unwound, and a sample is prepared by cutting the magnetic tape T to a length of 250 mm at a position 30 m in the longitudinal direction from the joint between the magnetic tape T and the leader tape LT. In this specification, the "longitudinal direction" in the "longitudinal direction from the joint between the magnetic tape T and the leader tape LT" refers to the direction from one end on the leader tape LT side to the other end on the opposite side.

[0152] Next, all layers of the sample other than the base layer 11 (i.e., the non-magnetic layer (underlayer) 12, the magnetic layer 13, and the back layer 14) are removed using 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 (base layer 11) is measured at five positions, and the measured values ​​are simply averaged (arithmetic mean) to calculate the average thickness of the base layer 11. Note that the five measurement positions are selected randomly from the sample so that they are each different from the others in the longitudinal direction of the magnetic tape T.

[0153] (Average thickness of back layer t b )

[0154] The upper limit of the average thickness of the back layer 14 is preferably 0.6 μm or less. If the upper limit of the average thickness of the back layer 14 is 0.6 μm or less, the thicknesses of the nonmagnetic layer (underlayer) 12 and the base layer 11 can be kept thick even when the average thickness of the magnetic tape T is 5.6 μm or less, thereby maintaining running stability of the magnetic tape T within a recording / 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.

[0155] The average thickness t of the back layer 14 b can be calculated as follows: First, the average thickness (average total thickness) of the magnetic tape T is T Measure the average thickness t T The method for measuring the average total thickness is as described below in "Average Thickness of Magnetic Tape." Next, the magnetic tape T housed in the cartridge 10A is unwound, and the magnetic tape T is cut into a length of 250 mm at a position 30 m longitudinally from the joint between the magnetic tape T and the leader tape LT to prepare a sample. Next, the back layer 14 of the sample is removed with a solvent such as MEK (methyl ethyl ketone) or dilute hydrochloric acid. Next, using a Mitutoyo Laser Hologram (LGH-110C), the thickness of the sample is measured at five positions, and these measurements are simply averaged (arithmetic average) to obtain the average thickness t B Then, the average thickness t of the back layer 14 is calculated using the following formula: b The five measurement positions are selected at random from the sample so that they are different positions in the longitudinal direction of the magnetic tape T. t b [μm]=t T [μm]-t B [μm]

[0156] (the average thickness of the magnetic layer t m )

[0157] The average thickness t of the magnetic layer 13 mis determined as follows. First, the magnetic tape T housed in the cartridge 10A is unwound, and three samples of 250 mm length are cut from the magnetic tape T at three locations, 10 m, 30 m, and 50 m from the connection between the magnetic tape T and the leader tape LT, in the longitudinal direction. Each sample is then thinned using a FIB method or similar. When using the FIB method, a carbon layer and a tungsten layer are formed as protective films as a pretreatment for observing the cross-sectional TEM images described below. The carbon layer is formed by vapor deposition on the surface of the magnetic tape T facing the magnetic layer 13 and the surface facing the back layer 14, and the tungsten layer is further formed by vapor deposition or sputtering on the surface facing the magnetic layer 13. The thinning is performed along the longitudinal direction of the magnetic tape T. That is, the thinning results in a cross section parallel to both the longitudinal direction and the thickness direction of the magnetic tape T.

[0158] The cross section of each obtained sliced ​​sample is observed under a transmission electron microscope (TEM) under the following conditions to obtain a TEM image of each sliced ​​sample. 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

[0159] Next, using the TEM image of each obtained sliced ​​sample, the thickness of the magnetic layer 13 is measured at 10 positions on each sliced ​​sample. The 10 measurement positions on each sliced ​​sample are randomly selected from the sample so that they are different positions in the longitudinal direction of the magnetic tape T. The measured values ​​of each obtained sliced ​​sample (thickness of the magnetic layer 13 at 30 points in total) are simply averaged (arithmetic average) to obtain an average value, which is the average thickness t of the magnetic layer 13. m Let [nm].

[0160] (Standard deviation of PES values ​​σPES)

[0161] The standard deviation σPES of the PES values ​​of the magnetic recording medium 10 according to the present technology can be preferably less than 50 nm within 40 FV numbers, more preferably 40 nm or less, even more preferably 30 nm or less, and even more preferably 25 nm or less. PES (Position Error Signal) indicates the deviation (error) of the read position of the servo pattern in the width direction of the magnetic recording medium 10 when the servo pattern is reproduced (read) by the recording / reproducing device 30. In order to accurately adjust the tension in the longitudinal direction of the magnetic recording medium 10, it is preferable that the linearity of the servo band when the servo pattern is read by the recording / reproducing device 30 is as high as possible, that is, the standard deviation σPES of the PES value indicating the deviation of the read position is as low as possible. Because the standard deviation σPES of the PES value of the magnetic recording medium 10 of the present technology is low as described above, the linearity of the servo band is high and tension adjustment can be performed accurately.

[0162] FIG. 14 is a diagram showing the change over time in the standard deviation σPES of the PES values ​​as the magnetic tape runs. As shown in FIG. 14, if σPES is less than 50 nm within 40 FV numbers, no track misalignment occurs. FIG. 15 is a diagram showing the change over time in the standard deviation σPES of the PES values ​​as the magnetic tape runs. As shown in FIG. 15, if σPES exceeds 50 nm within 40 FV numbers, track misalignment occurs frequently, causing the magnetic tape to stop running.

[0163] The upper diagram in Figure 13 shows the change in standard deviation σPES over time as the magnetic tape runs. The lower left diagram in Figure 13 is a cross-sectional view schematically illustrating the relationship between the magnetic head and the protrusions formed on the magnetic layer surface by the first particles (carbon particles) P1 and the protrusions formed on the magnetic layer surface by the second particles (alumina particles) P2 in region A (stable friction), where σPES in the upper diagram is approximately constant. The dashed line in the diagram is a virtual line indicating contact between the protrusions formed on the magnetic layer surface by the first particles (carbon particles) P1 and the magnetic head surface. The lower right diagram in Figure 13 is a cross-sectional view schematically illustrating the relationship between the magnetic head and the protrusions formed on the magnetic layer surface by the first particles (carbon particles) P1 and the protrusions formed on the magnetic layer surface by the second particles (alumina particles) P2 in region B (increasing friction), where σPES in the upper diagram tends to increase. The dashed line in the diagram is a virtual line indicating contact between the protrusions formed on the magnetic layer surface by the first particles (carbon particles) P1 and the magnetic head surface.

[0164] As shown in Figure 13, the standard deviation σPES is nearly constant in region A, but increases in region B. This is presumably because, in region A, the contact area between the protrusions formed by the first particles (carbon particles) P1 and the magnetic head surface is small, resulting in constant friction. In region B, however, as the magnetic tape runs, the first particles (carbon particles) P1 are worn by the magnetic tape, gradually collapsing the protrusions formed by the first particles (carbon particles) P1. This increases the contact area between the protrusions formed by the first particles (carbon particles) P1 and the magnetic head surface, resulting in increased friction. Figure 16 is a cross-sectional view schematically illustrating the relationship between the protrusions formed by the first particles (carbon particles) P1 and the protrusions formed by the second particles (alumina particles) P2 on the magnetic layer surface and the magnetic head. The dashed lines in Figure 16 are imaginary lines indicating the contact between the protrusions formed by the first particles (carbon particles) P1 on the magnetic layer surface and the magnetic head surface. The top diagram in Figure 16 is a diagram schematically illustrating the relationship between the magnetic head and the protrusions formed by the first particles (carbon particles) P1 and the second particles (alumina particles) P2 before the magnetic tape runs. As shown in the top diagram in Figure 16, before the magnetic tape runs, the height of the protrusions formed by the first particles (carbon particles) P1 is greater than the height of the protrusions formed by the second particles (alumina particles) P2, which presumably increases the spacing between the magnetic head and the magnetic tape, reduces the contact area between the protrusions formed by the first particles (carbon particles) P1 and the magnetic head, and reduces the chance of contact between the protrusions formed by the second particles (alumina particles) P2 and the magnetic head. The middle diagram in Figure 16 is a diagram schematically illustrating the relationship between the magnetic head and the protrusions formed by the first particles (carbon particles) P1 and the second particles (alumina particles) P2 after the magnetic tape runs.As shown in the middle diagram in Fig. 16, after the magnetic tape runs, the protrusions formed by the first particles (carbon particles) P1 are gradually worn down by contact with the magnetic tape, and the height of the protrusions formed by the first particles (carbon particles) P1 becomes greater than or equal to the height of the protrusions formed by the second particles (alumina particles) P2, which presumably reduces the spacing between the magnetic head and the magnetic tape, increases the contact area between the protrusions formed by the first particles (carbon particles) P1 and the magnetic head, and increases the chance of contact between the protrusions formed by the second particles (alumina particles) P2 and the magnetic head. The bottom diagram in Fig. 16 is a schematic diagram showing the relationship between the magnetic head and the protrusions formed by the first particles (carbon particles) P1 and the second particles (alumina particles) P2 of the magnetic tape corresponding to the magnetic recording medium according to the present technology. As shown in the lower diagram in Figure 16, by specifying the relationship between the heights of the protrusions formed by the first particles (carbon particles) P1 and the second particles (alumina particles) P2, and by specifying the height of the first particles (carbon particles) P1 or the second particles (alumina particles) P2 to reduce the spacing between the magnetic head and the magnetic tape, the contact area between the protrusions formed by the first particles (carbon particles) P1 and the magnetic head becomes smaller, and the opportunities for contact between the protrusions formed by the second particles (alumina particles) P2 and the magnetic head become more frequent, which is presumably suppressing the increase in the standard deviation σPES that accompanies the running of the magnetic tape.

[0165] Hereinafter, a method for measuring the standard deviation σPES will be described with reference to FIGS. The PES value is measured to determine the standard deviation σPES. To measure the PES value, a PES measurement head unit 300, such as that shown in FIG. 11, is prepared. An LTO2 head (a head conforming to the LTO2 standard) manufactured by HPE (Hewlett Packard Enterprise) is used as the head unit 300. The head unit 300 has two head sections 300A and 300B arranged side by side along the longitudinal direction of the magnetic recording medium 10. Each head section includes a plurality of recording heads 340 for recording data signals on the magnetic recording medium 10, a plurality of reproducing heads 350 for reproducing the data signals recorded on the magnetic recording medium 10, and a plurality of servo heads 320 for reproducing the servo signals recorded on the magnetic recording medium 10. When the head unit 300 is used only for measuring the PES value, the recording head 340 and the reproducing head 350 do not have to be included in the head unit.

[0166] First, head unit 300 is used to reproduce (read) servo patterns in a predetermined servo band provided on magnetic recording medium 10. At this time, servo head 320 of head unit 300A and servo head 320 of head unit 300B sequentially face each servo pattern in the predetermined servo band, and these two servo heads 320 sequentially reproduce the servo patterns. At this time, the portion of the servo pattern recorded on magnetic recording medium 10 facing servo head 320 is read and output as a servo signal.

[0167] As shown in FIG. 10, the PES value for each head part is calculated for each servo frame using the following formula.

number

[0168] The difference (Ba1-Aa1) indicates the time [sec] on the actual path between the two corresponding servo patterns B1 and A1. Similarly, the other difference terms also indicate the time [sec] on the actual path between the two corresponding servo patterns. These times are calculated from the time between timing signals obtained from the servo signal waveform and the tape running speed. In this specification, the actual path refers to the position where the servo signal read head actually runs on the servo signal. φ is the azimuth angle, which is determined by developing the magnetic recording medium 10 with a ferricolloid developer and using a universal tool microscope (TOPCON TUM-220ES) and a data processing device (TOPCON CA-1B).

[0169] In this technology, the standard deviation σPES of the PES values ​​is calculated using a servo signal that has been corrected for lateral tape movement. Furthermore, the servo signal is subjected to high-pass filtering to reflect the head tracking performance. In this technology, the standard deviation σPES is calculated using a signal obtained by performing the correction and high-pass filtering on the servo signal, and is known as the "written in PESσ." The method for measuring the standard deviation σPES of the PES values ​​will be described below.

[0170] First, the head 300 reads the servo signal from an arbitrary 1-meter range in the data recording area of ​​the magnetic recording medium 10. The signals acquired by the head units 300A and 300B are subtracted as shown in FIG. 12 to obtain a servo signal corrected for lateral tape movement. The corrected servo signal is then subjected to high-pass filtering. When the magnetic recording medium 10 is actually driven by a drive, the recording / reproducing head mounted on the drive is moved by an actuator across the width of the magnetic recording medium 10 to track the servo signal. Since the Written in PESσ is a noise value that takes into account the width-direction tracking ability of the head, the high-pass filtering is necessary. Therefore, although the high-pass filter is not particularly limited, it must be a function that can reproduce the width-direction tracking ability of the drive head. Using the signal obtained by the high-pass filtering, the PES value is calculated for each servo frame according to the above formula. The standard deviation of the PES values ​​calculated over the 1-meter range (Written in PESσ) is the standard deviation σPES of the PES values ​​in this technology.

[0171] (average particle size of magnetic powder)

[0172] When the magnetic powder contains hexagonal ferrite particles, the average particle size and average aspect ratio of the magnetic powder can be determined as follows. First, the magnetic tape T housed in the cartridge 10A is unwound, and the magnetic tape T is cut out at a position 30 m longitudinally from the connection between the magnetic tape T and the leader tape LT. Next, the magnetic tape T to be measured is processed and thinned using a FIB method or the like. When using the FIB method, a carbon layer and a tungsten layer are formed as protective films as a pretreatment for observing the cross-sectional TEM image described below. The carbon layer is formed by vapor deposition on the surface of the magnetic tape T facing the magnetic layer 13 and the surface facing the back layer 14, and the tungsten layer is further formed by vapor deposition or sputtering on the surface facing the magnetic layer 13. The thinning is performed along the length (longitudinal direction) of the magnetic tape T. In other words, the thinning results in a cross section parallel to both the longitudinal and thickness directions of the magnetic tape T.

[0173] The cross section of the obtained thin sample is observed using a transmission electron microscope (H-9500 manufactured by Hitachi High-Technologies Corporation) at an acceleration voltage of 200 kV and a total magnification of 500,000 times, so as to include the entire magnetic layer 13 in the thickness direction of the magnetic layer 13, and a TEM photograph is taken. The number of TEM photographs prepared is such that 50 particles can be extracted that can measure the plate diameter DB and plate thickness DA (see Figure 27) shown below.

[0174] In this specification, the size of a hexagonal ferrite particle (hereinafter referred to as "particle size") is defined as the plate diameter DB, which is the longest diameter of the plate surface or base, when the particle shape observed in the TEM photograph is plate-like or columnar (however, the thickness or height is smaller than the longest diameter of the plate surface or base), as shown in Figure 27. The thickness or height of the particle observed in the TEM photograph is defined as the plate thickness DA. When the plate surface or base of the particle observed in the TEM photograph is hexagonal, the longest diameter means the longest diagonal distance. When the thickness or height of a particle is not constant within a single particle, the thickness or height of the largest particle is defined as the plate thickness DA.

[0175] Next, 50 particles are selected from the TEM photograph based on the following criteria. Particles with parts outside the field of view of the TEM photograph are not measured, and only particles with a clear outline and that exist independently are measured. If particles overlap, those with a clear boundary between them and whose overall shape can be determined are measured as individual particles, but particles with unclear boundaries and whose overall shape cannot be determined are not measured as their shape cannot be determined.

[0176] Examples of TEM photographs are shown in Figures 28 and 29. In Figures 28 and 29, the particles indicated by arrows a and d are selected because their plate thickness (thickness or height) DA can be clearly confirmed. The plate thickness DA of each of the selected 50 particles is measured. The plate thicknesses DA thus obtained are simply averaged (arithmetic mean) to obtain the average plate thickness DA. ave Average plate thickness DA ave is the average particle plate thickness. Next, the plate diameter DB of each magnetic powder is measured. In order to measure the particle plate diameter DB, 50 particles whose particle plate diameter DB can be clearly confirmed are selected from the TEM photograph. For example, in Figures 28 and 29, the particles indicated by arrows b and c are selected because their plate diameter DB can be clearly confirmed. The plate diameter DB of each of the selected 50 particles is measured. The plate diameters DB thus determined are simply averaged (arithmetic averaged) to obtain the average plate diameter DB. ave Average plate diameter DB ave is the average grain size. And the average plate thickness DA ave and average plate diameter DB ave The average aspect ratio of the particles (DB ave / DA ave ) is found.

[0177] (average particle volume of magnetic powder)

[0178] The average particle volume of the magnetic powder can be calculated as follows: First, as described above in relation to the method for calculating the average particle size of the magnetic powder, the average plate thickness DA ave and average plate diameter DB aveNext, calculate the average particle volume V of the magnetic powder using the following formula:

[0179]

number

[0180] (Squareness ratio in the vertical direction Rs2)

[0181] The squareness ratio Rs2 in the perpendicular direction (thickness direction) of the magnetic recording medium of the present technology can be preferably 65% ​​or more, more preferably 67% or more, and even more preferably 70% or more. When the squareness ratio Rs2 is 65% or more, the perpendicular orientation of the magnetic powder is sufficiently high, resulting in a superior SNR. Therefore, superior electromagnetic conversion characteristics can be obtained. Furthermore, the servo signal shape is improved, making it easier to control on the drive side. In this specification, a magnetic recording medium being perpendicularly oriented may mean that the squareness ratio Rs2 of the magnetic recording medium is within the above numerical range (for example, 65% or more).

[0182] The squareness ratio Rs2 in the perpendicular direction is determined as follows. First, the magnetic tape T housed in the magnetic recording cartridge 10A is unwound, and the magnetic tape T is cut into a length of 250 mm at a position 30 m longitudinally from the joint between the magnetic tape T and the leader tape LT to prepare a sample. The sample is punched out to 6.25 mm x 64 mm and then folded in thirds to prepare a 6.25 mm x 8 mm measurement sample. Then, the MH hysteresis loop of the measurement sample (the entire magnetic tape T) corresponding to the perpendicular direction (thickness direction) of the magnetic tape T is measured using a VSM. Next, the coating films (underlayer 12, magnetic layer 13, back layer 14, etc.) are wiped off using acetone or ethanol, leaving only the base layer 11. The obtained base layer 11 is then punched out to 6.25 mm x 64 mm and then folded in thirds to prepare a 6.25 mm x 8 mm sample for background correction (hereinafter simply referred to as the "correction sample"). Thereafter, the MH hysteresis loop of the correction sample (base layer 11) corresponding to the perpendicular direction of the base layer 11 (the perpendicular direction of the magnetic recording medium 10) is measured using the VSM.

[0183] The MH hysteresis loop of the measurement sample (the entire magnetic tape T) and the MH hysteresis loop of the correction sample (base layer 11) are measured using a high-sensitivity vibrating sample magnetometer "VSM-P7-15" manufactured by Toei Industry Co., Ltd. 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. After obtaining the MH hysteresis loop of the measurement sample (the entire magnetic tape T) and the MH hysteresis loop of the correction sample (base layer 11), background correction is performed by subtracting the MH hysteresis loop of the correction sample (base layer 11) from the MH hysteresis loop of the measurement sample (the entire magnetic tape T), and the MH hysteresis loop after background correction is obtained. This background correction calculation is performed using the measurement and analysis program included with the "VSM-P7-15 model."

[0184] The saturation magnetization Ms (emu) and residual magnetization Mr (emu) of the MH hysteresis loop after background correction are substituted into the following equation to calculate the squareness ratio Rs2 (%). Note that all of the above MH hysteresis loop measurements are performed at 25°C. Furthermore, no "demagnetizing field correction" is performed when measuring the MH hysteresis loop in the perpendicular direction to the magnetic tape T. Note that this calculation uses the measurement and analysis program included with the "VSM-P7-15 model." Squareness ratio Rs2(%)=(Mr / Ms)×100

[0185] (4) Manufacturing method of magnetic recording medium

[0186] Next, a method for manufacturing the magnetic recording medium 10 having the above-described configuration will be described. First, a paint for forming a non-magnetic layer (underlayer) is prepared by kneading and / or dispersing non-magnetic powder, a binder, etc. in a solvent. Next, a paint for forming a magnetic layer is prepared by kneading and / or dispersing magnetic powder, a binder, etc. in a solvent. The following solvents, dispersing devices, and kneading devices can be used, for example, to prepare the paint for forming a magnetic layer and the paint for forming a non-magnetic layer (underlayer).

[0187] Examples of solvents that can be used in preparing the coating material include ketone-based solvents such as acetone, methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone; alcohol-based solvents such as methanol, ethanol, and propanol; ester-based solvents such as methyl acetate, ethyl acetate, butyl acetate, propyl acetate, ethyl lactate, and ethylene glycol acetate; ether-based solvents such as diethylene glycol dimethyl ether, 2-ethoxyethanol, tetrahydrofuran, and dioxane; aromatic hydrocarbon-based solvents such as benzene, toluene, and xylene; and halogenated hydrocarbon-based solvents such as methylene chloride, ethylene chloride, carbon tetrachloride, chloroform, and chlorobenzene. These solvents may be used singly or in combination.

[0188] Examples of kneading devices 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, and roll kneaders. Examples of dispersing devices 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 (such as the "DCP Mill" manufactured by Eirich), homogenizers, and ultrasonic dispersers.

[0189] Next, a nonmagnetic layer (underlayer) forming paint is applied to one main surface of the base layer 11 and dried to form the nonmagnetic layer 12. Subsequently, a magnetic layer forming paint is applied to the nonmagnetic layer 12 and dried to form the magnetic layer 13 on the nonmagnetic layer 12. During drying, the magnetic powder is magnetically oriented in the thickness direction of the base layer 11, for example, using a solenoid coil. Alternatively, during drying, the magnetic powder may be magnetically oriented in the longitudinal direction (running direction) of the base layer 11 using a solenoid coil, and then magnetically oriented in the thickness direction of the base layer 11. Such magnetic field orientation treatment can reduce the ratio Hc2 / Hc1 of the coercivity in the perpendicular direction (Hc1) to the coercivity in the longitudinal direction (Hc2), thereby improving the degree of perpendicular orientation of the magnetic powder. After the magnetic layer 13 is formed, a back layer 14 is formed on the other main surface of the base layer 11. This completes the magnetic recording medium 10.

[0190] The ratio Hc2 / Hc1 can be set to a desired value 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) for the coating film of the magnetic layer-forming paint. The strength of the magnetic field applied to the coating film is preferably between two and three times the cohesive strength of the magnetic powder. To further increase the ratio Hc2 / Hc1, it is also preferable to magnetize the magnetic powder before the magnetic layer-forming paint enters an orientation device that magnetically orients the magnetic powder. Note that the methods for adjusting the ratio Hc2 / Hc1 may be used alone or in combination of two or more.

[0191] The resulting magnetic recording medium 10 is then rewound around a large diameter core and hardened. Finally, the magnetic recording medium 10 is calendered and then cut to a predetermined width (e.g., 1 / 2 inch width). This completes the desired long, thin magnetic recording medium 10.

[0192] (5) Recording and playback device

[0193] [Configuration of recording / playback device]

[0194] Next, with reference to FIG. 5, an example of the configuration of a recording / reproducing device 30 that performs recording and reproducing on the magnetic recording medium 10 having the above configuration will be described.

[0195] The recording / reproducing device 30 has a configuration that allows adjustment of the tension applied in the longitudinal direction of the magnetic recording medium 10. The recording / reproducing device 30 also has a configuration that allows a magnetic recording cartridge 10A to be loaded into it. Here, for ease of explanation, a case will be described in which the recording / reproducing device 30 has a configuration that allows one magnetic recording cartridge 10A to be loaded into it, but the recording / reproducing device 30 may also have a configuration that allows multiple magnetic recording cartridges 10A to be loaded into it. The recording and reproducing device 30 is preferably a timing servo type magnetic recording and reproducing device, and the magnetic recording medium of the present technology is suitable for use in a timing servo type magnetic recording and reproducing device.

[0196] The recording / reproducing 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 cartridge 10A. The shortest recording wavelength of the recording / reproducing device 30 is 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.

[0197] As shown in Figure 5, the recording and playback device includes a spindle 31, a reel 32 on the recording and playback device side, a spindle drive device 33, a reel drive device 34, multiple guide rollers 35, a head unit 36, a communication interface (hereinafter referred to as I / F) 37, and a control device 38.

[0198] The spindle 31 is configured so that a magnetic recording cartridge 10A can be attached thereto. The magnetic recording cartridge 10A conforms to the LTO (Linear Tape Open) standard, and rotatably accommodates a single reel 10C around which a magnetic recording medium 10 is wound in a cartridge case 10B. A V-shaped servo pattern is pre-recorded as a servo signal on the magnetic recording medium 10. The reel 32 is configured so that the leading end of the magnetic recording medium 10 pulled out from the magnetic recording cartridge 10A can be fixed. The present technology also provides a magnetic recording cartridge including a magnetic recording medium according to the present technology, in which the magnetic recording medium may be wound on a reel, for example.

[0199] The spindle drive device 33 is a device that rotates the spindle 31. The reel drive device 34 is a device that rotates the reel 32. When recording or reproducing data on the magnetic recording medium 10, the spindle drive device 33 and the reel drive device 34 rotate the spindle 31 and the reel 32, thereby running the magnetic recording medium 10. The guide roller 35 is a roller that guides the running of the magnetic recording medium 10.

[0200] The head unit 36 ​​includes a plurality of recording heads for recording data signals on the magnetic recording medium 10, a plurality of reproducing heads for reproducing the data signals recorded on the magnetic recording medium 10, and a plurality of servo heads for reproducing the servo signals recorded on the magnetic recording medium 10. A ring-type head can be used as the recording head, for example, but the type of recording head is not limited to this.

[0201] The communication 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.

[0202] 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 10 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.

[0203] The control device 38 also detects changes in the width of the magnetic recording medium 10 based on the servo signals supplied from the head unit 36. Specifically, multiple V-shaped servo patterns are recorded as servo signals on the magnetic recording medium 10, and the head unit 36 ​​simultaneously reproduces two different servo patterns using two servo heads on the head unit 36, thereby obtaining respective servo signals. Using relative position information between the servo patterns and the head unit obtained from these servo signals, the position of the head unit 36 ​​is controlled to track the servo patterns. At the same time, distance information between the servo patterns can be obtained by comparing the two servo signal waveforms. By comparing the distance information between the servo patterns obtained during each measurement, the change in the distance between the servo patterns at each measurement can be obtained. By adding the distance information between the servo patterns obtained during servo pattern recording to this, the change in the width of the magnetic recording medium 10 can also be calculated. Based on the change in the distance between the servo patterns obtained as described above or the calculated change in the width of the magnetic recording medium 10, the control device 38 controls the rotational drive of the spindle drive device 33 and the reel drive device 34, and adjusts the tension in the longitudinal direction of the magnetic recording medium 10 so that the width of the magnetic recording medium 10 becomes a specified width or approximately a specified width. This makes it possible to suppress changes in the width of the magnetic recording medium 10.

[0204] [Recording / playback device operation]

[0205] Next, the operation of the recording / reproducing device 30 having the above configuration will be described.

[0206] First, the magnetic recording cartridge 10A is loaded into the recording / reproducing device 30, the leading end of the magnetic recording medium 10 is pulled out and transported to the reel 32 via a plurality of guide rollers 35 and a head unit 36, and the leading end of the magnetic recording medium 10 is attached to the reel 32.

[0207] 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 reel 32 are rotated in the same direction so that the magnetic recording medium 10 runs from the reel 10C toward the reel 32. As a result, the magnetic recording medium 10 is wound onto the reel 32, while the head unit 36 ​​records information onto the magnetic recording medium 10 or reproduces information recorded on the magnetic recording medium 10.

[0208] When rewinding the magnetic recording medium 10 onto the reel 10C, the spindle 31 and the reel 32 are rotated in the opposite direction to the above, causing the magnetic recording medium 10 to run from the reel 32 to the reel 10C. During this rewinding, the head unit 36 ​​also records information onto the magnetic recording medium 10 or reproduces information recorded on the magnetic recording medium 10.

[0209] (6) Variations

[0210] [Variation 1]

[0211] As shown in FIG. 6, the magnetic recording medium 10 may further include a barrier layer 15 disposed on at least one surface of the base layer 11. The barrier layer 15 is a layer for suppressing dimensional deformation of the base layer 11 due to environmental factors. For example, one cause of dimensional deformation is the hygroscopicity of the base layer 11, and the barrier layer 15 can reduce the rate at which moisture penetrates the base layer 11. The barrier layer 15 includes a metal or a metal oxide. Examples of metals that can be used 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 at least one of Al2O3, CuO, CoO, SiO2, Cr2O3, TiO2, Ta2O5, and ZrO2, as well as oxides of any of the above metals. Diamond-like carbon (DLC) or diamond can also be used.

[0212] The average thickness of the barrier layer 15 is preferably 20 nm or more and 1000 nm or less, more preferably 50 nm or more and 1000 nm or less. m However, the magnification of the TEM image is adjusted appropriately depending on the thickness of the barrier layer 15.

[0213] [Variation 2]

[0214] The magnetic recording medium 10 may be incorporated into a library device. That is, the present technology also provides a library device equipped with at least one magnetic recording medium 10. The library device has a configuration capable of adjusting the tension applied to the magnetic recording medium 10 in the longitudinal direction, and may be equipped with a plurality of the above-described recording / reproducing devices 30.

[0215] [Variation 3]

[0216] The magnetic recording medium 10 may be subjected to a servo signal writing process by a servo writer. The servo writer can maintain the width of the magnetic recording medium 10 constant or approximately constant by adjusting the tension in the longitudinal direction of the magnetic recording medium 10 during recording of the servo signal. In this case, the servo writer can include a detection device that detects the width of the magnetic recording medium 10. The servo writer can adjust the tension in the longitudinal direction of the magnetic recording medium 10 based on the detection result of the detection device.

[0217] 3. Second embodiment (1) One embodiment of a magnetic recording cartridge

[0218] [Cartridge configuration]

[0219] The present technology also provides a magnetic recording cartridge (also called a tape cartridge) including a magnetic recording medium according to the present technology. In the magnetic recording cartridge, the magnetic recording medium may be wound around a reel, for example. The magnetic recording cartridge may include, for example, a communication unit that communicates with a recording / reproducing device, a storage unit, and a control unit that stores information received from the recording / reproducing device via the communication unit in the storage unit, and reads information from the storage unit and transmits it to the recording / reproducing device via the communication unit in response to a request from the recording / reproducing device. The information may include adjustment information for adjusting the tension applied to the magnetic recording medium in the longitudinal direction.

[0220] An example of the configuration of a magnetic recording cartridge 10A equipped with a magnetic recording medium T having the above-described configuration will be described with reference to FIG.

[0221] 7 is an exploded perspective view showing an example of the configuration of a magnetic recording cartridge 10A. The magnetic recording cartridge 10A is a magnetic recording cartridge that complies with the LTO (Linear Tape-Open) standard, and includes a cartridge case 10B made up of a lower shell 212A and an upper shell 212B, a reel 10C around which a magnetic tape (a tape-like magnetic recording medium) T is wound, a reel lock 214 and a reel spring 215 for locking the rotation of the reel 10C, a spider 216 for unlocking the locked state of the reel 10C, a slide door 217 that straddles the lower shell 212A and the upper shell 212B and opens and closes a tape pull-out opening 212C provided in the cartridge case 10B, a door spring 218 that biases the slide door 217 to a closed position of the tape pull-out opening 212C, a write protect 219 for preventing accidental erasure, and a cartridge memory 211. The reel 10C is generally disk-shaped with an opening in the center, and is composed of a reel hub 213A made of a hard material such as plastic and a flange 213B. A leader tape LT is connected to one end of the magnetic tape T. A leader pin 220 is provided at the tip of the leader tape LT.

[0222] The cartridge memory 211 is provided near one corner of the magnetic recording cartridge 10A. When the magnetic recording cartridge 10A is loaded into the recording / reproducing device 80, the cartridge memory 211 faces a reader / writer (not shown) of the recording / reproducing device 80. The cartridge memory 211 communicates with the recording / reproducing device 30, specifically the reader / writer (not shown), using a wireless communication standard that complies with the LTO standard.

[0223] [Cartridge memory configuration]

[0224] An example of the configuration of the cartridge memory 211 will be described with reference to FIG.

[0225] 8 is a block diagram showing an example of the configuration of the cartridge memory 211. The cartridge memory 211 includes an antenna coil (communication unit) 331 that communicates with a reader / writer (not shown) using a specified communication standard, a rectification / power circuit 332 that generates power by using induced electromotive force from radio waves received by the antenna coil 331 and rectifying it, a clock circuit 333 that generates a clock from the radio waves received by the antenna coil 331 using induced electromotive force, a detection / modulation circuit 334 that detects the radio waves received by the antenna coil 331 and modulates the signal to be transmitted by the antenna coil 331, a controller (control unit) 335 that is composed of logic circuits and the like for identifying and processing commands and data from the digital signal extracted from the detection / modulation circuit 334, and a memory (storage unit) 336 that stores information. The cartridge memory 211 also includes a capacitor 337 connected in parallel to the antenna coil 331, and the antenna coil 331 and capacitor 337 form a resonant circuit.

[0226] The memory 336 stores information related to the magnetic recording cartridge 10A. The memory 336 is a nonvolatile memory (NVM). The memory 336 preferably has a storage capacity of approximately 32 KB or more. For example, if the magnetic recording cartridge 10A conforms to the next-generation LTO format standard or later, the memory 336 has a storage capacity of approximately 32 KB.

[0227] The memory 336 has a first memory area 336A and a second memory area 336B. The first memory area 336A corresponds to the memory area of ​​a cartridge memory (hereinafter referred to as a "conventional cartridge memory") that conforms to the LTO standard prior to LTO8, and is an area for storing information that conforms to the LTO standard prior to LTO8. Information that conforms to the LTO standard prior to LTO8 includes, for example, manufacturing information (such as a unique number for the magnetic recording cartridge 10A), usage history (such as the number of times the tape has been pulled out (Thread Count)), etc.

[0228] The second memory area 336B corresponds to an extended memory area for the memory area of ​​a conventional cartridge memory. The second memory area 336B is an area for storing additional information. Here, additional information refers to information related to the magnetic recording cartridge 10A that is not specified in the LTO standard prior to LTO8. Examples of additional information include, but are not limited to, tension adjustment information, management ledger data, index information, and thumbnail information of videos stored on the magnetic tape T. The tension adjustment information includes the distance between adjacent servo bands (the distance between servo patterns recorded on adjacent servo bands) when data is recorded on the magnetic tape T. The distance between adjacent servo bands is an example of width-related information related to the width of the magnetic tape T. The distance between servo bands will be described in detail later. In the following description, the information stored in the first memory area 336A may be referred to as "first information," and the information stored in the second memory area 336B may be referred to as "second information."

[0229] The memory 336 may have multiple banks. In this case, some of the multiple banks may constitute the first storage area 336A, and the remaining banks may constitute the second storage area 336B. Specifically, for example, if the magnetic recording cartridge 10A conforms to the next-generation or later LTO format standard, the memory 336 may have two banks with a storage capacity of approximately 16 KB, and one of the two banks may constitute the first storage area 336A, and the other bank may constitute the second storage area 336B.

[0230] The antenna coil 331 induces an induced voltage by electromagnetic induction. The controller 335 communicates with the recording / reproducing device 80 using a specified communication standard via the antenna coil 331. Specifically, for example, mutual authentication, sending and receiving of commands, or data exchange is performed.

[0231] The controller 335 stores information received from the recording / reproducing device 80 via the antenna coil 331 in the memory 336. In response to a request from the recording / reproducing device 80, the controller 335 reads information from the memory 336 and transmits it to the recording / reproducing device 80 via the antenna coil 331.

[0232] (2) Modified magnetic recording cartridge

[0233] [Cartridge configuration]

[0234] In the above-described embodiment of the magnetic recording cartridge, the magnetic tape cartridge is described as a one-reel type cartridge, but the magnetic recording cartridge of the present technology may also be a two-reel type cartridge. That is, the magnetic recording cartridge of the present technology may have one or more (e.g., two) reels on which the magnetic tape is wound. Below, an example of a magnetic recording cartridge of the present technology having two reels will be described with reference to FIG. 9.

[0235] 9 is an exploded perspective view showing an example of the configuration of a two-reel type cartridge 421. Cartridge 421 includes an upper half 402 made of synthetic resin, a transparent window member 423 that fits into and is fixed to a window 402a opened in the top surface of upper half 402, a reel holder 422 that is fixed to the inside of upper half 402 and prevents reels 406 and 407 from floating up, a lower half 405 that corresponds to upper half 402, reels 406 and 407 that are stored in a space formed when upper half 402 and lower half 405 are combined, magnetic tape MT1 wound around reels 406 and 407, a front lid 409 that closes a front opening formed when upper half 402 and lower half 405 are combined, and a back lid 409A that protects magnetic tape MT1 exposed in this front opening.

[0236] The reel 406 includes a lower flange 406b having a cylindrical hub portion 406a in the center around which the magnetic tape MT1 is wound, an upper flange 406c having approximately the same size as the lower flange 406b, and a reel plate 411 sandwiched between the hub portion 406a and the upper flange 406c. The reel 407 has the same configuration as the reel 406.

[0237] The window member 423 is provided with mounting holes 423a at positions corresponding to the reels 406 and 407, respectively, for assembling reel holders 422, which are reel holding means for preventing these reels from floating up. The magnetic tape MT1 is the same as the magnetic tape T in the first embodiment.

[0238] The present technology can also employ the following configuration. [1] a magnetic layer containing magnetic powder; the magnetic layer contains first particles having electrical conductivity and second particles having a Mohs hardness of 7 or more, protrusions are formed on the surface of the magnetic layer side by the first particles and the second particles, the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles is 2.3 or less, and A magnetic recording medium, wherein the average height (H2) of the protrusions formed by the second particles is 7 nm or less. [2] The magnetic recording medium according to [1], wherein the first particles are carbon particles. [3] The magnetic recording medium according to [1] or [2], wherein the second particles are inorganic particles. [4] The magnetic recording medium according to any one of [1] to [3], wherein the second particles are alumina particles. [5] The magnetic recording medium according to any one of [1] to [4], wherein the magnetic powder has at least one of a plate-like, spherical, and rectangular shape. [6] The number of protrusions formed by the second particles on the surface on the magnetic layer side is determined by the unit area (μm 2 The magnetic recording medium according to any one of [1] to [5], wherein each of the plurality of magnetic layers has two or more magnetic layers. [7] The magnetic recording medium according to any one of [1] to [6], wherein, on the surface of the magnetic layer side, the ratio of the second particles that form protrusions with a height of 10 nm or more to the second particles that form protrusions with a height of 4 nm or more is 20% or less. [8] The number of protrusions formed by the first particles on the surface on the magnetic layer side is determined by the unit area (μm 2 The magnetic recording medium according to any one of [1] to [7], wherein the number of particles per particle is 0.2 or more and 1.5 or less. [9] The magnetic recording medium according to any one of [1] to [8], wherein, on the surface of the magnetic layer side, the ratio of the first particles that form protrusions with a height of 10 nm or more to the first particles that form protrusions with a height of 4 nm or more is 60% or less.

[10] The magnetic recording medium according to any one of [1] to [9], which has an average thickness (average total thickness) of 5.7 μm or less.

[11] The magnetic recording medium according to any one of [1] to

[10] , wherein the average thickness of the magnetic layer is 0.08 μm or less.

[12] The magnetic recording medium according to any one of [1] to

[11] , wherein the abrasivity of the AlTiC rectangular pillars satisfies the following relational expression: 12.5≦Abrasivity≦20

[13] a magnetic layer containing magnetic powder; the magnetic layer contains first particles having electrical conductivity and second particles having a Mohs hardness of 7 or more, protrusions are formed on the surface of the magnetic layer side by the first particles and the second particles, the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles is 2.3 or less, and A magnetic recording medium, wherein the average height (H1) of the protrusions formed by the first particles is 12 nm or less.

[14] A magnetic recording cartridge in which the magnetic recording medium according to any one of [1] to

[13] is housed in a case in a state where it is wound around a reel.

[0239] 4. Working Example

[0240] Hereinafter, the present technology will be specifically explained using examples, but the present technology is not limited to these examples.

[0241] In this example, the average area per protrusion formed by each of the first particles and the second particles (referred to as SEM average area in Table 1), the total area of ​​the protrusions (referred to as SEM total area in Table 1), the number of protrusions per unit area (protrusion density), the average height of the protrusions (referred to as AFM average protrusion height in Table 1), the average diameter of the protrusions (Feret diameter), the proportion of the first particles that form protrusions with a protrusion height of 10 nm or more, the proportion of the second particles that form protrusions with a protrusion height of 10 nm or more, the abrasivity to the AlTiC rectangular pillars, and the average thickness (average total thickness) of the magnetic tape. T , the average thickness of the magnetic layer t mThe average thickness of the nonmagnetic layer (underlayer), the average thickness of the base layer, the average thickness of the back layer, and the standard deviation σPES of the PES values ​​were determined by the measurement method described in the above embodiment.

[0242] [Example 1] (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. Subsequently, further sand mill mixing was performed and filtering was carried out to prepare the magnetic layer-forming paint.

[0243] (First composition) Magnetic powder (hexagonal ferrite with M-type structure, composition: Ba-Ferrite, shape: plate-like hexagonal particles, average particle volume: 2500 nm 3 ):100 parts by mass Vinyl chloride resin (cyclohexanone solution 30% by mass): 46 parts by mass (Degree of polymerization: 300, Mn=10,000, contains polar groups OSO3K=0.07 mmol / g and secondary OH=0.3 mmol / g.) Aluminum oxide powder: 7.5 parts by mass (α-Al2O3, average particle size 80 nm, manufactured by Sumitomo Chemical Co., Ltd., product name: HIT82, Mohs hardness: 9) Carbon black: 2.0 parts by mass (Average particle size 70 nm, manufactured by Tokai Carbon Co., Ltd., product name: Seest TA)

[0244] (Second composition) Vinyl chloride resin: 1.6 parts by mass (Cyclohexanone solution 30% by mass resin) 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

[0245] Finally, 2 parts by weight of polyisocyanate (product name: Coronate L, manufactured by Nippon Polyurethane Industries, Ltd.) and 2 parts by weight of myristic acid were added as curing agents to the magnetic layer-forming coating material prepared as described above. The P / B ratio of the magnetic layer, which refers to the ratio of magnetic powder to adhesive (binder), was 7.0. The P / B ratios for each example are shown in Table 1 below.

[0246] (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 sand mill and filtering was performed to prepare the paint for forming the primer layer.

[0247] (Third composition) Acicular iron oxide powder: 100 parts by mass (α-Fe2O3, average major axis length 0.15μm) Vinyl chloride resin: 55.6 parts by mass (Resin solution: 30% resin by mass, 70% cyclohexanone by mass) Carbon black: 10 parts by mass (Average particle size 20nm)

[0248] (4th composition) Polyurethane resin UR8200 (manufactured by Toyobo): 18.5 parts by weight 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

[0249] Finally, 2 parts by mass of polyisocyanate (trade name: Coronate L, manufactured by Tosoh Corporation) and 2 parts by mass of myristic acid were added as a curing agent to the coating material for forming an undercoat layer prepared as described above.

[0250] (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 Corporation, product name: #80): 100 parts by mass Polyester polyurethane: 100 parts by mass (Nippon Polyurethane Co., Ltd., product name: N-2304) Methyl ethyl ketone: 500 parts by mass Toluene: 400 parts by mass Cyclohexanone: 100 parts by mass Polyisocyanate (product name: Coronate L, manufactured by Tosoh Corporation): 10 parts by mass

[0251] (Film forming process) Using the coating material prepared as described above, a magnetic tape was prepared as follows.

[0252] First, a PEN film (base film) having a long shape and an average thickness of 4.0 μm was prepared as a support for the base layer of the magnetic tape.Next, a base layer forming paint was applied to one main surface of the PEN film and dried, thereby forming a base layer on one main surface of the PEN film so that the average thickness of the final product would be 1.05 μm.Next, a magnetic layer forming paint was applied to the base layer and dried, thereby forming a magnetic layer on the base layer so that the average thickness of the final product would be 0.08 μm.

[0253] Next, a back layer-forming coating material was applied to the other main surface of the PEN film on which the undercoat layer and magnetic layer were formed, and then dried to form a back layer with an average thickness of 0.50 μm in the final product.The PEN film on which the undercoat layer, magnetic layer, and back layer were formed was then subjected to a curing treatment.Then, a calendering treatment was performed to smooth the surface of the magnetic layer.

[0254] (Cutting process) The magnetic tape obtained as described above was cut into a width of 1 / 2 inch (12.65 mm), thereby obtaining a long magnetic tape.

[0255] The 1 / 2-inch-wide magnetic tape was wound around a reel provided inside a cartridge case to obtain a magnetic recording cartridge. A servo signal was recorded on the magnetic tape using a servo track writer. The servo signal consisted of a series of V-shaped magnetic patterns, and the magnetic patterns were pre-recorded in two or more rows parallel to the longitudinal direction at known intervals (hereinafter referred to as "the known intervals between pre-recorded magnetic pattern rows").

[0256] The obtained magnetic tape had a ratio (H1 / H2) of the average height (H1) of the protrusions formed by the carbon black particles corresponding to the first particles to the average height (H2) of the protrusions formed by the aluminum oxide (α-Al2O3, hereinafter referred to as alumina) corresponding to the second particles of 2.21, the average height (H1) of the protrusions formed by the first particles was 11.3 nm, the average height (H2) of the protrusions formed by the second particles was 5.1 nm or less, the proportion of the first particles forming protrusions with a protrusion height of 10 nm or more was 58%, the proportion of the second particles forming protrusions with a protrusion height of 10 nm or more was 5.9%, and the average thickness (average total thickness) of the magnetic tape was t T is 5.63 μm, and the average thickness of the magnetic layer t m The average thickness of the non-magnetic layer (underlayer) was 0.08 μm, the average thickness of the non-magnetic layer (underlayer) was 1.05 μm, the average thickness of the base layer was 4.00 μm, and the average thickness of the back layer was 0.50 μm. The standard deviation σPES of the PES values ​​was less than 50 nm within 40 FV numbers, and a good effect of suppressing friction increase was obtained. The abrasiveness against the AlTiC rectangular pillars was 16.0 at 100 passes and 16.6 at 200 passes, and both had good abrasive power.

[0257] [Example 2] Example 1 refers to a magnetic powder (hexagonal ferrite having an M-type structure, composition: Ba-Ferrite, average particle volume: 1600 nm 3A magnetic tape was obtained in the same manner as in Example 1, except that the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles was 2.04, and the average height (H1) of the protrusions formed by the first particles was 10.4 nm. The proportion of the first particles forming protrusions with a protrusion height of 10 nm or more was 35%, the proportion of the second particles forming protrusions with a protrusion height of 10 nm or more was 0%, and the average thickness (average total thickness) of the magnetic tape was t T is 5.68 μm, and the average thickness of the magnetic layer t m The average thickness of the non-magnetic layer (underlayer) was 1.10 μm, the average thickness of the base layer was 4.02 μm, and the average thickness of the back layer was 0.48 μm. The standard deviation of the PES value, σPES, was less than 50 nm within 40 FV numbers, demonstrating a good friction increase suppression effect. The abrasiveness against the AlTiC rectangular pillars was 17.0 at 100 passes and 16.0 at 200 passes, both of which showed good abrasive power.

[0258] [Example 3] Example 1 refers to a magnetic powder (hexagonal ferrite having an M-type structure, composition: Ba-Ferrite, average particle volume: 1600 nm 3), a square prism bar (abrasiveness bar) made of a ceramic material (AlTiC) shown in FIG. 3 was attached to a dedicated jig shown in FIG. 2, and the magnetic tape was run back and forth over the square prism bar (abrasiveness bar) to scrape off the protrusions formed by the carbon black particles protruding from the magnetic tape surface. The magnetic tape obtained had a ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles of 1.52, the average height (H1) of the protrusions formed by the first particles was 7.6 nm, and the average height (H2) of the protrusions formed by the second particles was 5.0 nm. The magnetic tape was obtained in the same manner as in Example 1, except that the proportion of the first particles forming protrusions with a protrusion height of 10 nm or more was 80%, the proportion of the second particles forming protrusions with a protrusion height of 10 nm or more was 0%, and the average thickness (average total thickness) of the magnetic tape was t T is 5.58 μm, and the average thickness of the magnetic layer t m The average thickness of the non-magnetic layer (underlayer) was 1.02 μm, the average thickness of the base layer was 4.00 μm, and the average thickness of the back layer was 0.48 μm. The standard deviation of the PES value, σPES, was less than 50 nm within 40 FV numbers, demonstrating a good friction increase suppression effect. The abrasiveness against the AlTiC rectangular pillars was 16.6 at 100 passes and 16.0 at 200 passes, both of which showed good abrasive power.

[0259] [Example 4] Example 1 refers to a magnetic powder (hexagonal ferrite having an M-type structure, composition: Ba-Ferrite, average particle volume: 1600 nm 3), and in the magnetic layer-forming paint, the vinyl chloride resin of the first composition (30% by mass in cyclohexanone solution) was used as 65 parts by mass, the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles was 1.73, the average height (H1) of the protrusions formed by the first particles was 11.4 nm, and the average height (H2) of the protrusions formed by the second particles was 6.6 nm. A magnetic tape was obtained in the same manner as in Example 1, except that the proportion of the first particles that formed protrusions with a protrusion height of 10 nm or more was 93%, the proportion of the second particles that formed protrusions with a protrusion height of 10 nm or more was 13%, and the average thickness (average total thickness) of the magnetic tape was t T is 5.52 μm, and the average thickness of the magnetic layer t m The average thickness of the non-magnetic layer (underlayer) was 1.00 μm, the average thickness of the base layer was 4.00 μm, and the average thickness of the back layer was 0.45 μm. The standard deviation of the PES value, σPES, was less than 50 nm within 40 FV numbers, demonstrating a good friction increase suppression effect. The abrasiveness against the AlTiC rectangular pillars was 18.5 at 100 passes and 18.0 at 200 passes, both of which showed good abrasive power.

[0260] [Example 5] Example 1 refers to a magnetic powder (hexagonal ferrite having an M-type structure, composition: Ba-Ferrite, average particle volume: 1600 nm 3) was used, and in the magnetic layer-forming paint, 5.0 parts by mass of aluminum oxide powder (α-Al2O3, average particle size 80 nm, manufactured by Sumitomo Chemical Co., Ltd., product name: HIT82, Mohs hardness: 9) was added and dispersed not in the first composition but in the second composition (vinyl chloride resin: 1.1 parts by mass (resin solution: resin content 30% by mass, cyclohexanone 70% by mass), 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), so that the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles was 1.93, the average height (H1) of the protrusions formed by the first particles was 11.8 nm, and the average height (H2) of the protrusions formed by the second particles was 6.1 nm. A magnetic tape was obtained in the same manner as in Example 1, except that The ratio of the first particles that form protrusions with a protrusion height of 10 nm or more is 69%, the ratio of the second particles that form protrusions with a protrusion height of 10 nm or more is 0%, and the average thickness (average total thickness) of the magnetic tape is t T is 5.62 μm, and the average thickness of the magnetic layer t m The average thickness of the non-magnetic layer (underlayer) was 1.07 μm, the average thickness of the base layer was 3.98 μm, and the average thickness of the back layer was 0.49 μm. The standard deviation σPES of the PES value was less than 50 nm within 40 FV numbers, and a good friction increase suppression effect was obtained. The abrasivity against the AlTiC rectangular pillars was 15.0 at 100 passes and 10.0 at 200 passes.

[0261] [Comparative Example 1] A magnetic tape was obtained in the same manner as in Example 1, except that 2.0 parts by mass of carbon black particles with a particle size of 100 nm and 1.5 parts by mass of carbon black particles with a particle size of 70 nm were blended, the ratio (H1 / H2) of the average height of the protrusions formed by the first particles (H1) to the average height of the protrusions formed by the second particles (H2) was 2.35, the average height of the protrusions formed by the first particles (H1) was 12.2 nm, and the average height of the protrusions formed by the second particles (H2) was 5.2 nm. The standard deviation σPES of the PES values ​​exceeded 50 nm within 40 FV numbers, indicating poor suppression of friction increase. This is thought to be because the ratio (H1 / H2) of the average height of the protrusions formed by the first particles (H1) to the average height of the protrusions formed by the second particles (H2) exceeded 2.3, resulting in the carbon black particles corresponding to the first particles being scraped off as the magnetic tape ran, increasing the contact area between the magnetic tape surface and the magnetic head.

[0262] Comparative Example 2 Example 1 refers to a magnetic powder (hexagonal ferrite having an M-type structure, composition: Ba-Ferrite, average particle volume: 1600 nm 3 A magnetic tape was obtained in the same manner as in Example 1, except that a 100 nm particle size aluminum oxide powder (α-Al2O3, average particle size 100 nm, manufactured by Sumitomo Chemical Co., Ltd., product name: HIT60A, Mohs hardness: 9) was added in 5 parts by mass, the thickness of the magnetic layer and the thickness of the back layer were reduced, the ratio (H1 / H2) of the average height of the protrusions formed by the first particles (H1) to the average height of the protrusions formed by the second particles (H2) was 1.57, the average height of the protrusions formed by the first particles (H1) was 12.9 nm, and the average height of the protrusions formed by the second particles (H2) was 8.2 nm. The abrasiveness (100 passes) on the AlTiC rectangular pillars was 21.0, indicating excessive abrasive power. This is thought to be because the average particle size of the aluminum oxide powder corresponding to the second particles became too large, causing the average height of the protrusions formed by the second particles (H2) to exceed 7 nm, resulting in a high initial abrasive power (100 passes).

[0263] Comparative Example 3 Example 1 refers to magnetic powder (acicular metal, composition: Co 23 atm%, Fe 77 atm%, average particle volume: 3000 nm 3 A magnetic tape was obtained in the same manner as in Example 1, except that the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles was 2.05, the average height (H1) of the protrusions formed by the first particles was 12.7 nm, and the average height (H2) of the protrusions formed by the second particles was 6.2 nm. The abrasiveness (Abrasiveness) of the AlTiC rectangular pillars at 100 passes was 26.4, and the abrasiveness (Abrasiveness) at 200 passes was 24.1. This is thought to be due to the fact that the magnetic powder was an acicular metal magnetic powder and was oriented in the longitudinal direction, resulting in excessive abrasive force.

[0264] Comparative Example 4 Example 1 refers to a magnetic powder (hexagonal ferrite having an M-type structure, composition: Ba-Ferrite, average particle volume: 1600 nm 3A magnetic tape was obtained in the same manner as in Example 1, except that the magnetic layer coating material was prepared using a 100% tungsten carbide (Titanium dioxide) based on AlTiC. The magnetic layer coating material contained 5.0 parts by mass of aluminum oxide powder (α-Al2O3, average particle size 80 nm, manufactured by Sumitomo Chemical Co., Ltd., product name: HIT82, Mohs hardness: 9). The ratio (H1 / H2) of the average height of the protrusions formed by the first particles (H1) to the average height of the protrusions formed by the second particles (H2) was 3.00, the average height of the protrusions formed by the first particles (H1) was 14.7 nm, and the average height of the protrusions formed by the second particles (H2) was 4.9 nm. The standard deviation σPES of the PES values ​​exceeded 50 nm within 40 FV numbers, indicating poor friction increase suppression. The abrasivity against AlTiC rectangular pillars was 12.0 for 100 passes and 12.0 for 200 passes, indicating poor abrasivity. This is thought to be because the average height (H1) of the protrusions formed by the first particles became too high compared to the average height (H2) of the protrusions formed by the second particles, reducing the opportunities for the second particles to come into contact with the magnetic head and reducing the polishing power.

[0265] Table 1 shows the configurations and evaluation results of the magnetic tapes of Examples 1 to 5 and Comparative Examples 1 to 4.

[0266] [Table 1]

[0267] The symbols in Table 1 represent the following measured values. t T : Average thickness of magnetic tape (average total thickness) (unit: μm) t m : Average thickness of magnetic layer (unit: nm) t b : Average thickness of back layer (unit: μm)

[0268] The results shown in Table 1 reveal the following:

[0269] In all of the magnetic tapes of Examples 1 to 5, the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles was 2.3 or less, and the average height (H2) of the protrusions formed by the second particles was 7 nm or less; or the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles was 2.3 or less, and the average height (H1) of the protrusions formed by the first particles was 12 nm or less. The standard deviation σPES of the PES value was less than 50 nm within 40 FV numbers, thereby achieving a good friction increase suppression effect. Furthermore, the abrasivity against the AlTiC rectangular pillars was 12.5 or more and 20 or less, and there was no decrease in the abrasive force of the magnetic tape during running.

[0270] Comparing Example 1 and Comparative Example 1, the magnetic tape of Example 1 had a ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles of 2.3 or less, and the average height (H2) of the protrusions formed by the second particles was 7 nm or less, or the average height (H1) of the protrusions formed by the first particles was 12 nm or less, and thus had a good effect of suppressing an increase in friction (an increase in PES). On the other hand, the magnetic tape of Comparative Example 1 had a ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles of more than 2.3, and the average height (H1) of the protrusions formed by the first particles was more than 12 nm, and thus had a poor effect of suppressing an increase in friction (an increase in PES).

[0271] Comparing Example 3 with Comparative Example 2, the magnetic tape of Example 3 had a ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles of 2.3 or less, and the average height (H2) of the protrusions formed by the second particles was 7 nm or less, or the average height (H1) of the protrusions formed by the first particles was 12 nm or less, thereby exhibiting a good effect in suppressing an increase in friction (increase in PES) and appropriate abrasiveness against the AlTiC rectangular pillars. On the other hand, the magnetic tape of Comparative Example 2 had an average height (H2) of the protrusions formed by the second particles exceeding 7 nm, an average height (H1) of the protrusions formed by the first particles exceeding 12 nm, and an abrasiveness against the AlTiC rectangular pillars exceeding 20 per 100 passes, resulting in excessively high abrasive power.

[0272] Comparing Example 2 and Comparative Example 3, the ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles in the magnetic tape of Example 2 was 2.3 or less, and the average height (H1) of the protrusions formed by the first particles was 12 nm or less, and the abrasivity to the AlTiC rectangular pillars was also appropriate. On the other hand, the average height (H1) of the protrusions formed by the first particles in the magnetic tape of Comparative Example 3 exceeded 12 nm, and the abrasivity to the AlTiC rectangular pillars exceeded 20 at both 100 passes and 200 passes, indicating that the abrasive power was too high.

[0273] Comparing Example 2 and Comparative Example 4, the magnetic tape of Example 2 had a ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles of 2.3 or less, and the average height (H1) of the protrusions formed by the first particles was 12 nm or less, showing a good effect of suppressing an increase in friction (PES increase) and appropriate abrasivity to the AlTiC rectangular pillars. On the other hand, the magnetic tape of Comparative Example 4 had a ratio (H1 / H2) of the average height (H1) of the protrusions formed by the first particles to the average height (H2) of the protrusions formed by the second particles exceeding 2.3, and the average height (H1) of the protrusions formed by the first particles exceeding 12 nm, showing a poor effect of suppressing an increase in friction (PES increase). Furthermore, the abrasivity to the AlTiC rectangular pillars was less than 12.5 at both 100 passes and 200 passes, showing excessively low abrasive power.

[0274] Although the embodiments and examples of the present technology have been specifically described above, the present technology is not limited to the above-described embodiments and examples, and various modifications based on the technical ideas of the present technology are possible.

[0275] For example, the configurations, methods, steps, shapes, materials, and numerical values, etc., given in the above-described embodiments and examples are merely examples, and different configurations, methods, steps, shapes, materials, and numerical values, etc., may be used as necessary. Furthermore, the chemical formulas of compounds, etc., are representative, and are not limited to the valences, etc., given as long as they are general names of the same compounds.

[0276] Furthermore, the configurations, methods, processes, shapes, materials, numerical values, and the like of the above-described embodiments and examples can be combined with each other without departing from the spirit of the present technology.

[0277] Furthermore, in this specification, a numerical range indicated using "to" indicates a range that includes the numerical values ​​before and after "to" as the minimum and maximum values, respectively. In numerical ranges described in stages in this specification, the upper or lower limit of a numerical range in one stage may be replaced with the upper 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 types. [Explanation of symbols]

[0278] 10 Magnetic recording media 11 Base Layer 12 Base layer 13 Magnetic layer 14 Back layer

Claims

1. a magnetic layer containing magnetic powder; the magnetic layer contains first particles having electrical conductivity and second particles having a Mohs hardness of 7 or more, protrusions are formed on the surface of the magnetic layer side by the first particles and the second particles, The average height (H 1 ) and the average height (H 2 ) ratio (H 1 / H 2 ) is 2.3 or less, and The average height (H 2 ) is 7 nm or less.

2. 2. The magnetic recording medium according to claim 1, wherein the first particles are carbon particles.

3. The magnetic recording medium according to claim 1 , wherein the second particles are inorganic particles.

4. 2. The magnetic recording medium according to claim 1, wherein the second particles are alumina particles.

5. 2. The magnetic recording medium according to claim 1, wherein the magnetic powder has at least one of a plate-like, spherical, and rectangular shape.

6. The number of protrusions formed by the second particles on the surface on the magnetic layer side is determined by the unit area (μm 2 2. The magnetic recording medium according to claim 1, wherein the number of the first and second nuclei is two or more per nucleus.

7. 2. The magnetic recording medium according to claim 1, wherein the ratio of the second particles forming protrusions with a height of 10 nm or more to the second particles forming protrusions with a height of 4 nm or more on the surface facing the magnetic layer is 20% or less.

8. The number of protrusions formed by the first particles on the surface on the magnetic layer side is determined by the unit area (μm 2 2. The magnetic recording medium according to claim 1, wherein the number of particles is 0.3 or more and 1.9 or less per particle.

9. 2. The magnetic recording medium according to claim 1, wherein the ratio of the first particles forming protrusions with a height of 10 nm or more to the first particles forming protrusions with a height of 4 nm or more on the surface on the magnetic layer side is 60% or less.

10. 2. The magnetic recording medium according to claim 1, wherein the average thickness (average total thickness) is 5.7 [mu]m or less.

11. 2. The magnetic recording medium according to claim 1, wherein the average thickness of the magnetic layer is 0.08 [mu]m or less.

12. 2. The magnetic recording medium according to claim 1, wherein the abrasivity of the AlTiC rectangular pillars satisfies the following relation: abrasivity = 1 / 2 . 12.5≦Abrasivitality≦20

13. a magnetic layer containing magnetic powder; the magnetic layer contains first particles having electrical conductivity and second particles having a Mohs hardness of 7 or more, protrusions are formed on the surface of the magnetic layer side by the first particles and the second particles, The average height (H 1 ) and the average height (H 2 ) ratio (H 1 / H 2 ) is 2.3 or less, and The average height (H 1 ) is 12 nm or less.

14. 10. A magnetic recording cartridge, comprising the magnetic recording medium according to claim 1 wound around a reel and housed in a case.

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