Phosphor and ink composition
A near-infrared phosphor with a specific composition and particle size distribution is developed to address the issue of increased visible fluorescence in smaller particles, achieving reduced sub-peak intensity and enhanced near-infrared emission for security ink applications.
Patent Information
- Application Number
- JP2024057999
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-29
- Publication Date
- 2025-10-10
AI Technical Summary
Near-infrared phosphors used in security ink require reduced sub-peak intensities in the visible region and small particle sizes for effective printing, but existing phosphors with reduced particle sizes exhibit increased fluorescence intensity in the visible region due to red light absorption and emission.
A phosphor with a specific general formula (Eu(1-x)(1-y)La_xM_(1-x)z)2(Si_(1-y)Al_y)5N8, where x is between 0.05 and 0.20, y is between 0.00 and 0.10, z is greater than 0.44 and less than 0.80, and (1-x)z is less than 0.70, with a D97 particle size of 8.50 μm or less, is developed to suppress visible light emission and enhance near-infrared emission.
The solution provides a near-infrared phosphor with reduced sub-peak intensity in the visible region and improved near-infrared emission, suitable for security ink applications.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to phosphors and ink compositions. [Background technology]
[0002] Fluorescent materials that emit near-infrared light have attracted attention. For example, light-emitting diodes that emit near-infrared light are widely used in various remote control sensors, in-vehicle cameras, etc. Furthermore, light in the near-infrared region has excellent biological permeability and is used in various fields, such as medicine, agriculture, and food, for quality inspection applications such as detecting foreign objects, and for measuring the concentrations of hemoglobin and oxygen in blood.
[0003] Since phosphors that emit near-infrared light do not emit light in the visible region and are therefore not visible to the naked eye, their use in security applications is also being considered. One security application that has been considered is the formation of markers for determining authenticity to prevent counterfeiting of brand-name goods and the like (see, for example, Patent Document 1). In this case, the phosphor is used, for example, by being blended into ink (security ink) for forming a latent mark to be affixed to genuine products.
[0004] Various phosphors that emit near-infrared light have been investigated (for example, Patent Documents 1 to 4). Patent Document 4 describes a phosphor having the general formula: (Eu (1-x)(1-y) M1 x M2 (1-x)z )2(Si (1-y) Al y A powder containing a phosphor represented by the formula (I) is disclosed. M1 contains at least La, and further contains one or more elements selected from the group consisting of Y and lanthanoid elements other than La. M2 also contains at least Ba, and further contains one or more elements selected from the group consisting of Mg, Ca, and Sr. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] International Publication No. 2011 / 030747 [Patent Document 2] Japanese Patent Publication No. 2020-041135 [Patent Document 3] Japanese Patent Publication No. 2020-188044 [Patent Document 4] International Publication No. 2022 / 186069 Summary of the Invention [Problem to be solved by the invention]
[0006] The near-infrared phosphor used in security ink is required to emit no fluorescence other than the desired near-infrared light, or at least to have low fluorescence intensity (sub-peaks) in the visible region other than the intended region, and to have a small particle size for printing by inkjet or the like.
[0007] The present disclosure aims to provide a near-infrared phosphor having reduced sub-peak intensities, and also to provide an ink composition containing the near-infrared phosphor. [Means for solving the problem]
[0008] Through research by the present inventors, we attempted to reduce the particle size of the phosphor powder described in Patent Document 4 for use in security ink, and discovered a new finding: the smaller the particle size, the higher the fluorescence intensity in the visible region. The phosphor powder disclosed in Patent Document 3, when it does not contain lanthanum (La), emits red light around 660 nm. However, the introduction of La induces distortion in the crystalline structure constituting the phosphor, and the red light is absorbed in the distorted areas, resulting in a phosphor that emits new near-infrared fluorescence. The reason why the emission intensity in the visible region increases with decreasing particle size in the La-introduced phosphor is unclear, but the applicant speculates as follows: With larger particle sizes, the red light travels a considerable distance before escaping from the phosphor particles, increasing the probability that it will be absorbed by the distorted areas during this distance. Therefore, it is believed that the red light component (subpeak) in the phosphor powder as a whole is reduced. However, as the particle size of the phosphor particles decreases, the red light is absorbed and emitted to the outside without undergoing wavelength conversion, resulting in an increase in emission intensity in the visible region. Furthermore, it was found that by increasing the La content, the amount of strain in the crystal structure increases, and the probability of absorbing red light increases, thereby suppressing the emission in the visible region even when the particle size is reduced.
[0009] One aspect of the present disclosure provides, for example, the following phosphor [1]: [1] General formula: (Eu (1-x)(1-y) La x M (1-x)z )2(Si (1-y) Al y )5N8, In the general formula, M represents Ba, or two or more elements of Ba and one or more elements selected from the group consisting of Mg, Ca, and Sr, x is a number between 0.05 and 0.20, y is a value between 0.00 and 0.10, z is a value greater than 0.44 and equal to or less than 0.80, (1-x)z is less than 0.70, A phosphor having a D97 of 8.50 μm or less, where D97 is the 97% cumulative diameter in a volume-based cumulative particle size distribution.
[0010] The above phosphor is a powder composed of phosphor fine particles whose D97 is below a predetermined value, but the phosphor composition contains a relatively large amount of La, which suppresses light emission in the visible range and gives predominant light emission in the near-infrared range.
[0011] Another aspect of the present disclosure provides the following [2] to [3].
[0012] [2] The phosphor according to [1], wherein the value of (D90-D10) / D50 is 3.00 or less, where D10, D50, and D90 are the 10% cumulative diameter, 50% cumulative diameter, and 90% cumulative diameter in a volume-based cumulative particle size distribution, respectively. [3] An ink composition comprising the phosphor according to [1] or [2]. [Effects of the Invention]
[0013] According to the present disclosure, it is possible to provide a near-infrared phosphor having a reduced sub-peak intensity. According to the present disclosure, it is also possible to provide an ink composition containing the above-described near-infrared phosphor. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 shows the fluorescence spectra of the phosphors prepared in the examples and comparative examples. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, embodiments of the present disclosure will be described. However, the following embodiments are merely examples for explaining the present disclosure, and are not intended to limit the present disclosure to the following contents.
[0016] Unless otherwise specified, the materials exemplified in this specification can be used singly or in combination of two or more. When multiple substances corresponding to each component are present in the composition, the content of each component in the composition means the total amount of the multiple substances present in the composition, unless otherwise specified.
[0017] A phosphor according to one embodiment of the present disclosure has the general formula: (Eu (1-x)(1-y) La x M (1-x)z )2(Si (1-y) Al y )5N8. In the general formula, M represents Ba, or two or more elements consisting of Ba and one or more elements selected from the group consisting of Mg, Ca, and Sr. In the general formula, x represents a value of 0.05 or more and 0.20 or less, y represents a value of 0.00 or more and 0.10 or less, z represents a value of more than 0.44 and 0.80 or less, and (1-x)z is less than 0.70. When D97 is the 97% cumulative diameter in the volume-based cumulative particle size distribution of the phosphor, D97 is 8.50 μm or less.
[0018] The above phosphor can be said to be a phosphor having a composition in which, in a phosphor represented by the composition formula Eu2Si5N8, some of the elements at the Eu site are substituted with La and M, and some of the elements at the Si site are substituted with Al.
[0019] In the above general formula, M contains at least Ba, and from the viewpoint of further suppressing thermal degradation, the proportion of Ba in all elements corresponding to M may be, for example, 50 atomic % or more, 70 atomic % or more, or 90 atomic % or more. The elements corresponding to M may be substantially all Ba.
[0020] In the general formula, the lower limit of x may be, for example, 0.06 or more, 0.07 or more, 0.08 or more, 0.09 or more, or 0.10 or more. By setting the lower limit of x within the above range, local distortion can be introduced into the crystal structure, and light emitted in the visible region can be absorbed by the crystal with the distortion and extracted as near-infrared light (wavelength conversion). As a result, the emission intensity of the emission peak around 660 nm can be reduced and the emission intensity of the near-infrared light can be increased. In the general formula, the upper limit of x may be, for example, 0.18 or less, 0.17 or less, 0.16 or less, 0.15 or less, 0.14 or less, or 0.13 or less. By setting the upper limit of x within the above range, the generation of heterophases caused by the presence of excess La can be suppressed, and the emission of visible sub-peaks in the visible region can be suppressed, thereby enhancing the potential of the security ink in the visible region. When the particle diameter of the phosphor particles is large, it is not possible to grasp the influence of the value of x, that is, the fact that the above-mentioned effect can be obtained by adjusting the amount of La and balancing it with M, and it was difficult to predict that such an effect would be obtained.
[0021] In the above general formula, the lower limit of the value of y may be, for example, 0.01 or more, 0.02 or more, or 0.03 or more. In the above general formula, the upper limit of the value of y may be, for example, 0.09 or less, 0.08 or less, 0.07 or less, 0.06 or less, 0.05 or less, or 0.04 or less.
[0022] In the above general formula, the lower limit of the value of z may be, for example, 0.45 or more, 0.46 or more, 0.47 or more, 0.48 or more, 0.49 or more, or 0.50 or more. When the lower limit of the value of z is within the above range, the heat resistance of the phosphor is improved and thermal degradation can be further suppressed. In the above general formula, the upper limit of the value of z may be, for example, 0.80 or less, 0.70 or less, 0.60 or less, or 0.55 or less. By preparing the phosphor so that the upper limit of z is within the above range, the particle size of the phosphor can be made smaller.
[0023] In the above general formula, when M is Ba, the value of (1-x)z is less than 0.70, but may be adjusted as follows: In the above case, the upper limit of the value of (1-x)z may be, for example, 0.68 or less, 0.65 or less, 0.60 or less, or 0.50 or less. In the above case, the lower limit of the value of (1-x)z may be, for example, 0.40 or more, 0.43 or more, 0.45 or more, or 0.46 or more.
[0024] In the composition of the phosphor, the contents of europium (Eu), lanthanum (La), element M (Ba, Mg, Ca, and Sr), silicon (Si), and aluminum (Al) can be determined by quantitative elemental analysis using an ICP optical emission spectrometer. The amount of nitrogen (N) can be determined by subtracting the total value of the elements quantified by the ICP optical emission spectrometer from 100%. The presence of nitrogen atoms (N) can be confirmed using an oxygen / nitrogen analyzer. This measurement allows the values of x, y, and z in the general formula to be determined. Examples of ICP optical emission spectrometers that can be used include a multi-type ICP optical emission spectrometer manufactured by Agilent Technologies (product name "Agilent 5110 VDV type"), and examples of oxygen / nitrogen analyzers that can be used include a device manufactured by Horiba, Ltd. (product name "EMGA-920").
[0025] The crystal system of the phosphor particles constituting the phosphor according to the present disclosure may be an orthorhombic system, and may have the same crystal system as the phosphor expressed by the composition formula Eu2Si5N8. The lattice constants and axial angles of the phosphor expressed by the composition formula Eu2Si5N8 are a = 0.57094(4) nm, b = 0.068207(4) nm, c = 0.93291(6) nm, and α = β = γ = 90.00°. The unit cell volume (the product of a, b, and c) of the phosphor expressed by the composition formula Eu2Si5N8 is 0.363 nm 3 The values in parentheses above indicate the standard deviation, and are based on the method established by the International Union of Crystallography (IUCr).
[0026] According to Vegard's law, the lattice constants a, b, and c and the unit cell volume determined from the X-ray diffraction spectrum of the above phosphor are useful as indicators for measuring the degree of substitution of La and M at the Eu site and the degree of substitution of Al at the Si site in a crystal represented by the composition formula EuSiN.
[0027] The lattice constant a of the phosphor may be 0.574 to 0.577 nm, or 0.575 to 0.576 nm.
[0028] The lattice constant b of the phosphor may be 0.685 to 0.691 nm, or 0.686 to 0.688 nm.
[0029] The lattice constant c of the phosphor may be 0.935 to 0.941 nm, or 0.936 to 0.940 nm.
[0030] The unit lattice volume of the above phosphor is 0.368 to 0.374 nm 3 , 0.368~0.372nm 3 , 0.369~0.371nm 3 It may be.
[0031] The 10% cumulative diameter (D10) in the volume-based cumulative particle size distribution of the phosphor may be 0.60 μm or less, 0.55 μm or less, 0.50 μm or less, or 0.45 μm or less. When the upper limit of D10 is within the above range, the phosphor can be uniformly dispersed with other components contained in the ink when mixed with the ink. The lower limit of the 10% cumulative diameter (D10) in the volume-based cumulative particle size distribution of the phosphor may be, for example, 0.15 μm or more, 0.20 μm or more, 0.25 μm or more, or 0.30 μm or more. When the lower limit of D10 is within the above range, a decrease in luminescence intensity due to particle size reduction can be minimized.
[0032] The 50% cumulative diameter (D50) in the volume-based cumulative particle size distribution of the phosphor may be, for example, less than 3.00 μm, 2.00 μm or less, 1.50 μm or less, or 1.00 μm or less. When the upper limit of the D50 is within the above range, the phosphor can be dispersed more uniformly even when other components are contained in the ink composition prepared by blending with a resin or the like. The lower limit of the 50% cumulative diameter (D50) in the volume-based cumulative particle size distribution of the phosphor may be, for example, 0.70 μm or more, 0.70 μm or more, 0.60 μm or more, or 0.50 μm or more. When the lower limit of the D50 is within the above range, the decrease in luminescence intensity associated with the reduction in particle size of the phosphor can be further suppressed.
[0033] The upper limit of the 90% cumulative diameter (D90) in the volume-based cumulative particle size distribution of the phosphor may be, for example, 10.00 μm or less, 8.00 μm or less, 6.00 μm or less, 5.00 μm or less, or 4.00 μm or less. When the upper limit of the D90 is within the above range, the potential of the phosphor in the printed portion can be further increased when an ink composition obtained by blending the phosphor with a resin or the like is printed. The lower limit of the 90% cumulative diameter (D90) in the volume-based cumulative particle size distribution of the phosphor may be, for example, 2.00 μm or more, 2.10 μm or more, 2.20 μm or more, or 2.40 μm or more. When the lower limit of the D90 is within the above range, the decrease in luminescence intensity due to particle size reduction can be further suppressed.
[0034] The 97% cumulative diameter (D97) in the volume-based cumulative particle size distribution of the phosphor is 8.50 μm or less, but may be, for example, 8.00 μm or less, 7.00 μm or less, 6.00 μm or less, or 5.00 μm or less. The phosphor according to the present disclosure has a relatively high amount of La, and even if the D97 falls within the above range, the occurrence of sub-peaks is suppressed. The lower limit of the 97% cumulative diameter (D97) in the volume-based cumulative particle size distribution of the phosphor may be, for example, 3.40 μm or more, 3.60 μm or more, 3.80 μm or more, or 4.00 μm or more. By having the lower limit of the D97 within the above range, an increase in the viscosity of the ink composition can be further suppressed when the ink composition is prepared by blending the phosphor with a resin or the like.
[0035] When the 10%, 50%, and 90% cumulative diameters in the volume-based cumulative particle size distribution of the phosphor are defined as D10, D50, and D90, respectively, the value (D90-D10) / D50 (span value) may be, for example, 3.00 or less, 2.70 or less, 2.60 or less, 2.50 or less, or 2.48 or less. The span value may be, for example, 2.10 or more, 2.20 or more, 2.30 or more, or 2.35 or more.
[0036] In this specification, the 10% cumulative diameter (D10), 50% cumulative diameter (D50), 90% cumulative diameter (D90), and 97% cumulative diameter (D97) in the volume-based cumulative particle size distribution of the phosphor are measured in accordance with the particle size distribution measurement method using laser diffraction and scattering described in JIS R 1629:1997, "Method for measuring particle size distribution by laser diffraction and scattering of fine ceramic raw materials." These mean the particle diameters at which the cumulative values from the smallest particle size in the volume-based particle size distribution curve reach 10%, 50%, 90%, and 97%, respectively, of the total. Specifically, D10, D50, D90, and D97 can be determined by the procedures described in the Examples section of this specification. Note that D50, also known as the median diameter, refers to the average particle size of the target particles. D10, D50, D90, and D97 can be controlled, for example, by adjusting the amounts of Ba and La sources, heating temperature, heating time, and other conditions during the production of the phosphor.
[0037] The phosphor according to the present disclosure has an emission peak with maximum emission intensity in the wavelength range of 820 to 860 nm in the fluorescence spectrum obtained when irradiated with light having a wavelength of 450 nm. The phosphor also has no emission peak in the wavelength range of less than 800 nm, or even if it does have an emission peak, the emission intensity is suppressed to a low level. In particular, the emission intensity of the emission peak around 660 nm is suppressed.
[0038] In the fluorescence spectrum obtained when the phosphor is irradiated with light having a wavelength of 450 nm, the value of the emission intensity at a wavelength of 660 nm relative to the emission intensity at a wavelength of 840 nm (the value of [emission intensity at a wavelength of 660 nm] / [emission intensity at a wavelength of 840 nm]) is suppressed to a small value. The upper limit of the value of [emission intensity at a wavelength of 660 nm] / [emission intensity at a wavelength of 840 nm] can be, for example, 0.220 or less, 0.200 or less, 0.150 or less, 0.100 or less, 0.090 or less, 0.080 or less, 0.075 or less, 0.070 or less, or 0.068 or less.
[0039] The above-mentioned phosphor has an emission peak in the near-infrared region and the emission intensity of a sub-peak in the visible light region is suppressed or the sub-peak is absent, making it useful as a phosphor for security ink. An ink composition according to an embodiment of the present disclosure is an ink composition containing the above-mentioned phosphor. The ink composition may be a security ink.
[0040] An example of a method for producing the above-mentioned phosphor includes firing a raw material mixture containing a Eu source, a La source, a M source, a Si source, and an Al source at 1300°C or higher in an inert gas atmosphere to obtain a fired product (hereinafter also referred to as the firing step), and pulverizing and classifying the fired product to obtain a powder having a 97% cumulative diameter (D97) in a volume-based cumulative particle size distribution of 8.50 μm or less (hereinafter also referred to as the pulverizing and classifying step).
[0041] In the raw material mixture, at least one selected from the group consisting of a Eu source, a La source, a M source, a Si source, and an Al source is a nitride. For example, the raw material mixture contains at least one of europium nitride, lanthanum nitride, barium nitride, magnesium nitride, calcium nitride, strontium nitride, silicon nitride, and aluminum nitride.
[0042] The blending amount of each component in the raw material mixture can be adjusted according to the target composition of the phosphor. The blending amount of the La source in the raw material mixture may be 4 mol% or more, 5 mol% or more, 6 mol% or more, or 7 mol% or more, based on the total amount of the raw material mixture. By adjusting the blending amount of the La source to be within the above range, a near-infrared phosphor with suppressed emission in the visible region can be more easily prepared. The blending amount of the La source in the raw material mixture may be 10 mol% or less, 9 mol% or less, or 8 mol% or less, based on the total amount of the raw material mixture. By adjusting the blending amount of the La source to be within the above range, the intensity of near-infrared emission can be further increased.
[0043] The inert gas atmosphere in the firing step may be, for example, a nitrogen gas atmosphere. The atmosphere in the firing step may be set under pressurized conditions, for example, 0.5 MPaG or more, or 0.7 MPa G or more. By firing under pressurized conditions, decomposition of the fired product can be more sufficiently suppressed. The pressure of the atmosphere in the firing step may be, for example, 1.0 MPa G or less, or 0.9 MPa G or less.
[0044] The firing temperature in the firing step is set to 1300°C or higher to adjust the chemical composition within the phosphor particles to be uniform, and the relatively low firing temperature suppresses excessive particle growth. The firing temperature in the firing step may be, for example, 1300°C or higher, 1350°C or higher, 1400°C or higher, or 1450°C or higher. The upper limit of the firing temperature in the firing step may be, for example, 1900°C or lower, 1800°C or lower, 1700°C or lower, or 1600°C or lower. By setting the upper limit of the firing temperature within the above range, it is possible to further suppress the particle size from becoming too large for blending with ink due to growth of the phosphor particles.
[0045] The calcination time in the calcination step may be, for example, 1 to 96 hours, 1 to 80 hours, 1 to 60 hours, 1 to 30 hours, 2 to 10 hours, 3 to 10 hours, or 3 to 5 hours.
[0046] The fired product can be pulverized in the pulverizing and classifying step using, for example, a jet mill, a stamp mill, a vibration mill, a ball mill, or the like.
[0047] After the pulverization in the pulverization and classification step, classification is carried out. This classification may be so-called elutriation classification.
[0048] Although several embodiments have been described above, the present disclosure is not limited to the above embodiments. Furthermore, the descriptions of the above embodiments can be applied to each other. [Example]
[0049] The present disclosure will be described in more detail below with reference to examples and comparative examples, although the present disclosure is not limited to the following examples.
[0050] Example 1 Lanthanum nitride (LaN, manufactured by Kojundo Chemical Laboratory Co., Ltd.) was weighed out to 11.318 g, europium nitride (EuN, manufactured by Taiheiyo Cement Corporation) to 55.282 g, barium nitride (Ba3N2, manufactured by Materion Co., Ltd.) to 48.852 g, silicon nitride (Si3N4, E-10 grade, manufactured by UBE Corporation) to 83.068 g, and aluminum nitride (AlN, E grade, manufactured by Tokuyama Corporation) to 3.034 g, and these were mixed in a mortar under a nitrogen atmosphere for 10 minutes to obtain a raw material mixture.
[0051] Next, the resulting raw material mixture was placed in a boron nitride container and heated to 1500°C at a rate of 10°C / min under a nitrogen gas atmosphere at a pressure of 0.8 MPa·G. The mixture was held at 1500°C for 8 hours to obtain a sintered block.
[0052] The fired product was crushed in an alumina mortar to obtain a crushed product. The crushed product was passed through a nylon sieve with a mesh size of 45 μm (330 mesh). The fraction that passed through the sieve was pulverized in a ball mill for 2 hours to obtain a phosphor.
[0053] <Composition analysis of phosphors> The composition of the resulting phosphor was analyzed. Specifically, 10 mg of the resulting phosphor was placed in a platinum crucible, 2 g of alkaline flux was added, and the phosphor was melted in an electric furnace. After cooling, 10 mL of hydrochloric acid was added to the platinum crucible and heated in a hot bath to obtain a solution. The resulting solution was adjusted to a constant volume of 100 mL. This 100 mL solution was diluted 10 times with pure water to prepare a sample solution. The composition of the constituent elements of the phosphor was analyzed using a multi-type IPC optical emission spectrometer (Agilent Technologies, product name "Agilent 5110 VDV type"). Based on the analysis results, the values of x, y, and z in general formula (1) were determined. Nitrogen was also confirmed using an oxygen / nitrogen analyzer "EMGA-920" (product name) manufactured by Horiba, Ltd., and the percentage of nitrogen was determined by subtracting the total value of the elements detected by the IPC optical emission spectroscopic analysis from 100%. The results are shown in Table 1.
[0054] <Particle size distribution of phosphor> The particle size distribution of the resulting phosphor was measured using the laser diffraction / scattering method described in JIS R 1629:1997, "Method for Measuring Particle Size Distribution of Fine Ceramics Raw Materials by Laser Diffraction / Scattering." Specifically, 0.03 g of the target phosphor was added to 100 mL of ion-exchanged water containing 0.05% by mass of sodium hexametaphosphate, and the mixture was dispersed for 3 minutes using an ultrasonic homogenizer (Nippon Seiki Seisakusho Co., Ltd., product name "Ultrasonic Homogenizer US-150E," amplitude: 100%, oscillation frequency: 19.5 kHz, tip size: φ20, amplitude: 32 ± 2 μm) to prepare the measurement sample. The particle size was then measured using a particle size distribution analyzer (Microtrac-Bell Corporation, product name "Microtrac MT3300EX II"). From the obtained particle size distribution, the D10, D50, D90, and D97 were determined. Furthermore, based on the determined values of D10, D50, and D90, (D90-D10) / D50 (span value) was calculated.
[0055] <Determination of lattice constant and lattice volume> The powder prepared in Example 1 was subjected to X-ray diffraction measurement using an X-ray diffractometer (manufactured by Rigaku Corporation, product name: Ultima IV) to measure the lattice constants a, b, and c of the phosphor powder. The unit cell volume was determined from the obtained values of the lattice constants a, b, and c. The measurement range was 10 to 60°. The results are shown in Table 1.
[0056] <Evaluation of phosphors: Emission spectrum> The emission spectrum of the obtained phosphor was obtained. Specifically, the phosphor to be measured was first filled into a concave cell so that the surface was smooth, and then attached to the opening of an integrating sphere. Monochromatic light at a wavelength of 450 nm from a Xe lamp (light source) was introduced into the integrating sphere using an optical fiber as excitation light. This excitation light was irradiated onto the phosphor powder to be measured, and the fluorescence spectrum was measured. A spectrofluorometer (manufactured by Horiba, Ltd., product name "Flurolog-3-iHR-NIR") was used for the measurement. The wavelength showing the highest intensity in the wavelength range from 500 nm to 1400 nm was determined as the emission peak wavelength from the obtained fluorescence spectrum. Furthermore, the emission intensities at wavelengths of 840 nm and 660 nm were determined, and the value of [emission intensity at wavelength 660 nm] / [emission intensity at wavelength 840 nm] was calculated. For reference, the fluorescence spectra of the phosphors prepared in the examples and comparative examples are shown in Figure 1.
[0057] Example 2 A phosphor was obtained in the same manner as in Example 1, except that the crushing time in the ball mill was changed to 4 hours. The obtained phosphor was evaluated in the same manner as in Example 1.
[0058] Example 3 A phosphor was obtained in the same manner as in Example 1, except that the time for pulverization using the ball mill was changed to 8 hours. The obtained phosphor was evaluated in the same manner as in Example 1.
[0059] Example 4 A phosphor was obtained in the same manner as in Example 1, except that the time for pulverization using the ball mill was changed to 16 hours. The obtained phosphor was evaluated in the same manner as in Example 1.
[0060] Example 5 A phosphor was obtained in the same manner as in Example 1, except that the values of x, y, and z in the target composition were changed as shown in Table 1 and the time for pulverization using a ball mill was changed to 16 hours. The obtained phosphor was evaluated in the same manner as in Example 1.
[0061] Example 6 A phosphor was obtained in the same manner as in Example 1, except that the values of x, y, and z in the target composition were changed as shown in Table 1 and the time for pulverization using a ball mill was changed to 16 hours. The obtained phosphor was evaluated in the same manner as in Example 1.
[0062] Example 7 A phosphor was obtained in the same manner as in Example 1, except that the values of x, y, and z in the target composition were changed as shown in Table 1 and the time for pulverization using a ball mill was changed to 16 hours. The obtained phosphor was evaluated in the same manner as in Example 1.
[0063] (Comparative Example 1) A phosphor was obtained in the same manner as in Example 1, except that the values of x, y, and z in the target composition were changed as shown in Table 2, the firing temperature was changed to 1600°C, and the fired product was not subjected to crushing treatment. The obtained phosphor was evaluated in the same manner as in Example 1.
[0064] (Comparative Example 2) A phosphor was obtained in the same manner as in Example 4, except that the values of x, y, and z in the target composition were changed as shown in Table 2. The obtained phosphor was evaluated in the same manner as in Example 1.
[0065] (Comparative Example 3) A phosphor was obtained in the same manner as in Example 1, except that the values of x, y, and z in the target composition were changed as shown in Table 2, the firing temperature was changed to 1600°C, and the fired product was not subjected to crushing treatment. The obtained phosphor was evaluated in the same manner as in Example 1.
[0066] [Table 1]
[0067] [Table 2] [Industrial Applicability]
[0068] According to the present disclosure, it is possible to provide a near-infrared phosphor having a reduced peak intensity of a sub-peak in the visible region. According to the present disclosure, it is also possible to provide an ink composition containing the above-described near-infrared phosphor.
Claims
1. General formula: (Eu (1-x)(1-y) La x M (1-x)z ) 2 (Si (1-y) Al y ) 5 N 8 A phosphor represented by In the general formula, M represents Ba, or two or more elements of Ba and one or more elements selected from the group consisting of Mg, Ca, and Sr, x is a value of 0.05 or more and 0.20 or less, y represents a value of 0.00 or more and 0.10 or less, z is a value greater than 0.44 and equal to or less than 0.80; (1-x)z is less than 0.70; A phosphor having a 97% cumulative diameter D97 of 8.50 μm or less in a volume-based cumulative particle size distribution.
2. 2. The phosphor according to claim 1, wherein the value of (D90-D10) / D50 is 3.00 or less, where D10, D50, and D90 are the 10% cumulative diameter, 50% cumulative diameter, and 90% cumulative diameter in a volume-based cumulative particle size distribution, respectively.
3. An ink composition comprising the phosphor according to claim 1 or 2.
Citation Information
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