Phosphor, light emitting device, light source for sensing system, and lighting system for sensing system

The use of a phosphor-enhanced light-emitting device with a specific chemical formula addresses the challenge of low light-receiving sensitivity in CMOS image sensors, enhancing near-infrared light intensity for accurate vital information acquisition in non-contact sensing systems.

JP7678609B2Active Publication Date: 2025-05-16PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2023531727
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-06-28
Filing Date
2022-06-01
Publication Date
2025-05-16
Estimated Expiration
2042-06-01

AI Technical Summary

Technical Problem

Existing non-contact vital sensing systems face challenges in achieving accurate vital information acquisition due to mismatched emission spectra of light-emitting devices and camera sensitivity, particularly in low-light environments, and the need for improved light intensity in the near-infrared region to compensate for low light-receiving sensitivity of CMOS image sensors.

Method used

A phosphor represented by the formula (Gd1-x-y,Lnx,MIIx)3MIII2(Ga1-z,MIVz)3O12:Cr3+ is used in a light-emitting device to enhance near-infrared light emission, combined with a solid-state light source and wavelength converter to produce high-intensity near-infrared light, addressing the sensitivity issues of CMOS image sensors.

Benefits of technology

The solution provides a light-emitting device with high fluorescence intensity in the near-infrared region, enabling accurate vital information acquisition even with inexpensive CMOS image sensors, improving the accuracy and quality of vital information such as SpO2, blood pressure, and blood vessel information.

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Abstract

A fluorescent substance 4 is represented by general formula (1). Formula (1): (Gd1-x-y,Lny,MII x)3MIII 2(Ga1-z,MIV z)3O12:Cr3+ (In the formula, Ln is one or more elements selected from among La, Pr, Nd, Sm, Eu, Tb, Dy, Ho, Er, Yb, and Lu, MII is a divalent element, MIII is a trivalent element, MIV is a tetravalent element, and x, y, and z satisfy 0<x<0.5, 0≤y<0.5, and 0<z<0.5.)
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Description

[Technical field]

[0001] The present invention relates to a phosphor, a light emitting device, a light source for a sensing system, and an illumination system for a sensing system. [Background technology]

[0002] In recent years, there has been an increasing demand for non-contact vital sensing. In non-contact vital sensing, for example, a light emitting device is used to irradiate a subject with visible light, near-infrared light, or the like, and a camera is used to capture an image of the subject's photographic region to obtain image data, which is then processed by a computer to obtain vital information. Examples of vital information include SpO2 (oxygen saturation measured by a pulse oximeter), blood pressure, pulse wave, and blood vessel information deep inside the body.

[0003] A system including a light-emitting device, a camera, and a computer used in non-contact vital sensing is generally called a sensing system. Conventionally, light-emitting devices include those that output visible light, and those that output visible light and near-infrared light. Also, RGB cameras, near-infrared cameras, etc. are used as cameras.

[0004] The vital information obtained by non-contact vital sensing differs depending on the emission spectrum of the output light of the light emitting device. For example, to obtain blood pressure information, output light with a high intensity of the optical component at a wavelength of 850 nm is preferable. To obtain pulse wave information, output light with a high intensity of the optical component at a wavelength of 940 nm is preferable. Thus, in non-contact vital sensing, it is preferable to obtain output light with a high intensity of the optical component in the near-infrared region.

[0005] Specifically, the light components used in measuring SpO2 will be described. The oxygen saturation (%) measured by SpO2 is calculated by the following formula (S1). [Number 1] Oxygen saturation (%) = (C(HbO2)) / (C(HbO2)+C(Hb)) × 100 (S1) (C(HbO2): concentration of oxyhemoglobin HbO2, C(Hb): concentration of reduced hemoglobin Hb)

[0006] The absorption coefficients of HbO2 and Hb vary depending on the wavelength. Figure 14 is a diagram showing the relationship between the wavelength and the absorption coefficients of oxygenated hemoglobin HbO2 and reduced hemoglobin Hb.

[0007] As shown in Figure 14, the absorption spectrum of HbO2 has a small absorption coefficient for red light with a wavelength of about 660 nm, while the absorption spectrum of Hb has a small absorption coefficient in the wavelength region for near-infrared light with a wavelength of about 850 nm. Therefore, by measuring the transmitted light of these red and near-infrared lights and calculating the transmission ratio of red light to near-infrared light, it is possible to calculate the ratio of HbO2 and Hb. Note that it is also possible to use red light with a wavelength of about 750 nm, for example, instead of red light with a wavelength of about 660 nm, as the red light.

[0008] Incidentally, the accuracy of vital information obtained by non-contact vital sensing varies depending on the combination of the light emitting device and the camera. Specifically, the accuracy of the vital information varies depending on the emission spectrum characteristics of the output light of the light emitting device and the light receiving sensitivity characteristics of the camera.

[0009] For example, when a light-emitting device that only emits visible light is combined with an RGB camera, problems can arise such as not being able to obtain vital sign information in dark places, such as at night, and the device is easily affected by external disturbances such as body movement and changes in illuminance.

[0010] In response to this, a sensing system is known that combines a light-emitting device that outputs visible light and near-infrared light with an RGB camera and a near-infrared camera. When a near-infrared camera is used, the light receiving wavelength range is wider than that of an RGB camera alone, and light receiving wavelengths from the visible range to the near-infrared range can be received. The reason for combining an RGB camera and a near-infrared camera is that the CMOS image sensors used in inexpensive RGB cameras generally have low sensitivity to receiving near-infrared light.

[0011] Fig. 12 is a graph showing an example of a light receiving sensitivity curve LR of a CMOS image sensor included in a general RGB camera. As shown in Fig. 12, a general CMOS image sensor has low light receiving sensitivity in the red to near-infrared region NIR of wavelengths of 750 to 950 nm.

[0012] A sensing system using an RGB camera and a near-infrared camera can estimate heart rate and biometric data in the dark. deep This makes it possible to obtain vital information such as blood vessel information in the area. However, because this sensing system uses two types of cameras with different configurations, there is a problem that the accuracy of the obtained vital information is likely to decrease due to fluctuations in the lighting environment. Specifically, the accuracy of the obtained vital information is likely to decrease due to a mismatch between the near-infrared light emitted from the near-infrared LED in the light-emitting device and the two types of cameras.

[0013] Therefore, there is a demand for a sensing system that combines a light-emitting device with one type of CMOS image sensor. In addition, when images with more wavelengths than RGB are acquired, it is easy to obtain different amounts of information for each wavelength, so it is expected that the accuracy of the obtained vital information will be improved. In addition, it is preferable that the sensing system is low-cost. For this reason, the use of a multispectral camera or a hyperspectral camera that is equipped with a general and inexpensive CMOS image sensor and that acquires images with more wavelengths than RGB is being considered.

[0014] In this sensing system, there is a demand for the use of a light-emitting device with high emission intensity in the near-infrared region to compensate for the low light-receiving sensitivity characteristic of typical CMOS image sensors in the infrared to near-infrared region (NIR) with wavelengths of 750 to 950 nm.

[0015] A light emitting device having the emission spectrum EP1 shown in Fig. 13 is known as a light emitting device for a sensing system using a general CMOS image sensor. However, the emission spectrum EP1 of this light emitting device has a low intensity in the infrared to near infrared region NIR of 750 to 950 nm wavelengths and decreases toward the longer wavelength side. Therefore, even if this light emitting device is used, it is not possible to cover the low light receiving sensitivity characteristic in the near infrared region of the general CMOS image sensor shown in Fig. 12.

[0016] In addition, light emitting devices with high emission intensity in the near infrared region are being considered. and It contains at least Tm or Cr, has an emission peak wavelength of 700 to 1000 nm, and has a sharp emission spectrum with a half-width of the emission peak waveform of less than 60 nm. of A light emitting device having the same is disclosed. [Prior art documents] [Patent documents]

[0017] [Patent Document 1] International Publication No. 2018 / 143198 Summary of the Invention

[0018] However, the light emitting device disclosed in Patent Document 1 has a sharp half-width of the emission peak waveform of less than 60 nm, so the overall emission intensity in the near-infrared region cannot be sufficiently increased. Therefore, even if this light emitting device is used, it is not possible to cover the low light receiving sensitivity characteristic in the near-infrared region of a general CMOS image sensor shown in Figure 12. It is considered that the intensity of the light emitting device in the infrared to near-infrared region NIR with wavelengths of 750 to 950 nm can be sufficiently increased by using a phosphor having a fluorescence peak in the wavelength range of 750 to 900 nm.

[0019] The present invention has been made in view of the problems of such prior art. An object of the present invention is to provide a phosphor, a light-emitting device, a light source for a sensing system, and an illumination system for a sensing system having high fluorescence intensity in the red to near-infrared region NIR with a wavelength of 750 to 950 nm.

[0020] In order to solve the above problems, the phosphor according to an aspect of the present invention is represented by the following general formula (1). [Chemical formula 1] (Gd 1-x-y ,Ln y ,M II x )3M III 2(Ga 1-z ,M IV z )3O 12 :Cr 3+ ···(1) (In the formula, Ln is one or more elements selected from La, Pr, Nd, Sm, Eu, Tb, Dy, Ho, Er, Yb, and Lu, M II is a divalent element, M III is a trivalent element, M IV is a tetravalent element, and x, y, and z satisfy 0 < x < 0.5, 0 ≤ y < 0.5, and 0 < z < 0.5)

[0021] The light-emitting device according to an aspect of the present invention includes the phosphor and a solid light source having an emission peak on the shorter wavelength side than the fluorescence peak of the phosphor.

[0022] The light source for a sensing system according to an aspect of the present invention includes the light-emitting device.

[0023] The illumination system for a sensing system according to an aspect of the present invention includes the light-emitting device.

Brief Description of the Drawings

[0024] [Figure 1] FIG. 1 is a schematic cross-sectional view showing an example of a light-emitting device according to the first embodiment. [Diagram 2] FIG. 2 is a schematic cross-sectional view showing an example of a light-emitting device according to the second embodiment. [Diagram 3] FIG. 3 is a schematic cross-sectional view illustrating an example of a light emitting device according to the third embodiment. [Figure 4] FIG. 4 is a schematic cross-sectional view showing an example of a light emitting device according to the fourth embodiment. [Diagram 5] FIG. 5 is a schematic cross-sectional view illustrating an example of a light emitting device according to the fifth embodiment. [Figure 6] FIG. 6 is a schematic cross-sectional view showing an example of a light emitting device according to the sixth embodiment. [Figure 7] FIG. 7 is a schematic cross-sectional view illustrating an example of a light emitting device according to the seventh embodiment. [Figure 8] FIG. 8 is a diagram illustrating an example of the sensing system according to the first embodiment. [Figure 9] FIG. 9 is a diagram illustrating an example of a sensing system according to the second embodiment. [Figure 10] FIG. 10 is a diagram illustrating an example of a sensing system according to the third embodiment. [Figure 11] FIG. 11 is a diagram illustrating an example of a sensing system according to the fourth embodiment. [Figure 12] FIG. 12 is a graph showing an example of a light receiving sensitivity curve LR of a CMOS image sensor included in a typical CMOS camera. [Figure 13] FIG. 13 is a graph showing an example of an emission spectrum of a solid-state light source using a conventional phosphor. [Figure 14] FIG. 14 is a diagram showing the relationship between wavelength and absorption coefficient of oxygenated hemoglobin HbO2 and reduced hemoglobin Hb. [Figure 15] FIG. 15 is a diagram showing an emission spectrum of Comparative Example 1. [Figure 16] FIG. 16 is a diagram showing an emission spectrum of Example 1. [Figure 17] FIG. 17 is a diagram showing an emission spectrum of Example 2. [Figure 18] FIG. 18 is a diagram showing an emission spectrum of Example 3. [Figure 19]FIG. 19 is a diagram showing an emission spectrum of Example 4. [Figure 20] FIG. 20 is a diagram showing an emission spectrum of Example 5. [Figure 21] FIG. 21 is a diagram showing an emission spectrum of Example 6. [Figure 22] FIG. 22 is a diagram showing an emission spectrum of Example 7. [Figure 23] FIG. 23 is a diagram showing an emission spectrum of Example 8. [Figure 24] FIG. 24 is a diagram showing an emission spectrum of Example 9. [Diagram 25] FIG. 25 is a diagram showing an emission spectrum of Example 10. [Figure 26] FIG. 26 is a diagram showing an emission spectrum of Example 11. [Figure 27] FIG. 27 is a diagram showing an emission spectrum of Example 12. [Figure 28] FIG. 28 is a diagram showing an emission spectrum of Example 13. [Figure 29] FIG. 29 is a diagram showing an emission spectrum of Example 14. [Diagram 30] FIG. 30 is a diagram showing an emission spectrum of Example 15. [Diagram 31] FIG. 31 is a diagram showing an emission spectrum of Example 16. [Diagram 32] FIG. 32 is a diagram showing an emission spectrum of Example 17. [Diagram 33] FIG. 33 is a diagram showing an emission spectrum of Example 18. [Diagram 34] FIG. 34 is a diagram showing an emission spectrum of Example 19. [Diagram 35] FIG. 35 is a diagram showing an emission spectrum of Example 20. [Diagram 36] FIG. 36 is a diagram showing an emission spectrum of Example 21. [Figure 37] FIG. 37 is a diagram showing an emission spectrum of Example 22. [Figure 38]FIG. 38 is a diagram showing an emission spectrum of Example 23. [Figure 39] FIG. 39 is a diagram showing an emission spectrum of Example 24. [Diagram 40] FIG. 40 is a diagram showing an emission spectrum of Example 25. [Diagram 41] FIG. 41 is a diagram showing the results of X-ray diffraction in Comparative Example 1 and Examples 1 to 4. [Diagram 42] FIG. 42 is a diagram showing the X-ray diffraction results of Examples 5 to 9. [Diagram 43] FIG. 43 is a diagram showing the X-ray diffraction results of Examples 10 to 14. [Diagram 44] FIG. 44 is a diagram showing the X-ray diffraction results of Examples 15 to 19. [Diagram 45] FIG. 45 is a diagram showing the X-ray diffraction results of Examples 20 to 24. [Diagram 46] FIG. 46 is a diagram showing the results of X-ray diffraction in Example 25. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0025] Hereinafter, a phosphor and a light emitting device according to an embodiment will be described with reference to the drawings. Also, a sensing system including a light source for a sensing system and an illumination system for a sensing system according to an embodiment will be described with reference to the drawings. Note that the dimensional ratios in the drawings are exaggerated for the convenience of explanation and may differ from the actual ratios.

[0026] <Light emitting device> Light emitting devices 1 (1A to 1G) according to the embodiments are shown in Figs. 1 to 7. Fig. 1 is a schematic cross-sectional view showing an example of a light emitting device according to a first embodiment. Fig. 2 is a schematic cross-sectional view showing an example of a light emitting device according to a second embodiment. Fig. 3 is a schematic cross-sectional view showing an example of a light emitting device according to a third embodiment. Fig. 4 is a schematic cross-sectional view showing an example of a light emitting device according to a fourth embodiment. Fig. 5 is a schematic cross-sectional view showing an example of a light emitting device according to a fifth embodiment. Fig. 6 is a schematic cross-sectional view showing an example of a light emitting device according to a sixth embodiment. Fig. 7 is a schematic cross-sectional view showing an example of a light emitting device according to a seventh embodiment.

[0027] The light emitting devices 1E to 1G according to the fifth to seventh embodiments are the same as the light emitting devices 1A to 1C according to the first to third embodiments except that they further include a light guide 15 that guides the primary light 6 to the wavelength converter 3. Although not shown, as a modified example, the near-infrared light emitting device 10D of the light emitting device 1D according to the fourth embodiment can also be made to include a light guide 15 that guides the primary light 6 to the wavelength converter 3.

[0028] The light emitting devices 1A to 1G according to the first to seventh embodiments each include a solid-state light source 2 that emits primary light 6, and a wavelength converter 3 that includes a first phosphor 4 that absorbs the primary light 6 and emits first wavelength converted light 7 that includes a near-infrared light component. This enables the light emitting devices 1A to 1G according to the first to seventh embodiments to emit output light 90 that includes the first wavelength converted light 7 that includes at least a near-infrared light component.

[0029] Specifically, in the light emitting devices 1A to 1G according to the first to seventh embodiments, when primary light 6 emitted from the solid-state light source 2 is incident on the wavelength converter 3, phosphors such as the first phosphor 4 contained in the wavelength converter 3 emit fluorescence. When the first phosphor 4 receives the primary light 6, it emits first wavelength-converted light 7 including a near-infrared light component.

[0030] More specifically, the wavelength converters 3A to 3G of the light emitting devices 1A to 1G according to the first to seventh embodiments can receive the primary light 6 and emit output light 90 including at least the primary light 6 and the first wavelength converted light 7 including a near-infrared light component. The wavelength converters 3A to 3G constituting the light emitting devices 1A to 1G emit near-infrared light-containing light 50 or NIR+α light 80. Here, the near-infrared light-containing light 50 is light including the primary light 6 and the first wavelength converted light 7 including a near-infrared light component. The NIR+α light 80 is light including the primary light 6, the first wavelength converted light 7 including a near-infrared light component, and the second wavelength converted light 9. In other words, the NIR+α light 80 is light including the near-infrared light-containing light 50 and the second wavelength converted light 9.

[0031] The light emitting devices 1A to 1G according to the first to seventh embodiments are capable of emitting output light 90 consisting of near-infrared light-containing light 50 or NIR+α light 80, and therefore are capable of emitting output light 90 including at least near-infrared light-containing light 50.

[0032] In the light emitting devices 1C, 1D, and 1G according to the third, fourth, and seventh embodiments, the light emission of the near-infrared light emitting device 10C, 10D, or 10G and the white light emitting device 30C, the white light source 35, or the white light emitting device 30G can be controlled independently. Therefore, the light emitting devices 1C, 1D, and 1G can emit output light 90 including at least near-infrared light-containing light 50, while they can also emit only white light 70 originating from the white light emitting device 30C, etc., as the output light 90. In addition, in a modification of the light emitting devices 1C, 1D, and 1G in which the visible light emitting device 20C, the visible light source 25, etc. are used instead of the white light emitting device 30C, the white light source 35, etc., it becomes possible to emit only the visible light 60 originating from the visible light emitting device 20C, etc., as the output light 90.

[0033] A light emitting device 1D according to the fourth embodiment is a light emitting device in which a near-infrared light emitting device 10D (10), which is a light emitting device that emits near-infrared light, is combined with a white light source 35 that emits white light.

[0034] [First embodiment] A light emitting device 1A(1) according to the first embodiment will be described. The light emitting device 1A according to the first embodiment includes a solid-state light source 2 and a wavelength converter 3A(3).

[0035] In the light emitting device 1A, the solid-state light source 2 and the wavelength converter 3A are arranged apart from each other, so that the subject can be irradiated with output light 90 containing first wavelength converted light 7 emitted from the wavelength converter 3A with a high degree of freedom. The output light 90 is made of near-infrared light-containing light 50.

[0036] The light emitting device 1A emits near-infrared light-containing light 50 that contains primary light 6 and first wavelength-converted light 7 that contains a near-infrared light component, as output light 90. Therefore, the light emitting device 1A can be said to be, in detail, a near-infrared light emitting device 10A(10) that emits near-infrared light-containing light 50.

[0037] (solid light source) The solid-state light source 2 emits primary light 6. Light with high emission intensity is used as the primary light 6. Examples of light with high emission intensity include laser light and light emitted from a high-power LED. For example, light including blue light having a maximum intensity of a spectral distribution within a wavelength range of 400 nm or more and less than 500 nm is used as the primary light 6. As the blue light, light having a maximum intensity of a spectral distribution within a wavelength range of 420 nm or more and less than 480 nm is preferably used.

[0038] For example, a solid-state light emitting element is used as the solid-state light source 2. If the solid-state light source 2 is a solid-state light emitting element, it is preferable because it has excellent durability and a long life. For example, a solid-state light emitting element such as an LED or a laser element is used as the solid-state light source 2.

[0039] The solid-state light source 2 has an emission spectrum E on the shorter wavelength side than the fluorescence peak FP1 of the fluorescence spectrum F1 of the first wavelength-converted light of the first phosphor 4 contained in the wavelength converter 3A(3). LS Emission peak of EP LS where A is the fluorescence spectrum of B, FB The fluorescence peak FP B has an emission peak EP on the shorter wavelength side than A which means that the emission peak EP of A A has an emission peak wavelength on the shorter wavelength side than the fluorescence peak wavelength of B's fluorescence peak FP B Also, the fluorescence peak FP1 means the part showing the maximum value when the fluorescence spectrum F1 of the first phosphor 4 is an aggregate of spectral intensities at intervals of 10 nm or less.

[0040] (Wavelength converter) The wavelength converter 3A(3) includes the first phosphor 4 and the encapsulant 5. In the wavelength converter 3A, the first phosphor 4 is included in the encapsulant 5.

[0041] <The first phosphor> The first phosphor 4 is represented by the following general formula (1). [Chemical formula 2] (Gd 1-x-y , Ln y , M II x )3M III 2(Ga 1-z , M IV z )3O 12 :Cr 3+ ···(1) (In the formula, Ln is one or more elements selected from La, Pr, Nd, Sm, Eu, Tb, Dy, Ho, Er, Yb, and Lu, and M II is a divalent element, M III is a trivalent element, M IV is a tetravalent element, and x, y, and z satisfy 0 < x < 0.5, 0 ≤ y < 0.5, 0 < z < 0.5)

[0042] The general formula (1) is such that a part of the crystal structure of the garnet represented by the following general formula (2) is substituted with Cr 3+ . [Chemical formula 3] A′3B′2(C′O4)3···(2)

[0043] In general formula (2), A', B', and C' are atoms that constitute the parent crystal of the garnet crystal structure. Specifically, A' is the "A site", and the structure including the "A site" is an A site structure in which oxygen atom O is dodecahedral coordinated with atom A' at the center. B' is the "B site", and the structure including the "B site" is a B site structure in which oxygen atom O is octahedral coordinated with atom B' at the center. C' is the "C site", and the structure including the "C site" is a C site structure in which oxygen atom O is tetrahedral coordinated with atom C' at the center.

[0044] General formula (1) is a compound in which Gd is present in the "A site" and M is present in the "B site" in general formula (2). III However, Ga is contained in the "C site" as an essential component.

[0045] In the general formula (1), Ln, M II , M III , and M IV When Ln and M are the above elements, the first wavelength-converted light 7 has a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. II , M III , and M IV When is one of the above elements, it is preferable because it enables highly accurate sensing by compensating for the low near-infrared sensitivity of an image sensor such as a CMOS using Si.

[0046] In the general formula (1), M II is preferably a divalent element, and more preferably contains at least one of Ca and Sr. II These elements are preferable because they tend to increase the internal quantum efficiency IQE of the first wavelength-converted light 7 .

[0047] In the general formula (1), M III is preferably a trivalent element other than Gd and Ln, and more preferably contains at least one of Ga and Sc. III These elements are preferable because they tend to increase the internal quantum efficiency IQE of the first wavelength-converted light 7 .

[0048] In the general formula (1), M IV is preferably a tetravalent element, and more preferably contains at least one of Si and Ge. IV These elements are preferable because they tend to increase the internal quantum efficiency IQE of the first wavelength-converted light 7 .

[0049] In the general formula (1), preferably, M II is a divalent element, M III is a trivalent element other than Gd and Ln, and M IV is a tetravalent element. When general formula (1) is made of a combination of these elements, the internal quantum efficiency IQE of the first wavelength-converted light 7 is likely to be high, which is preferable.

[0050] In the general formula (1), M II contains at least one of Ca and Sr, and M III contains at least one of Ga and Sc, and M IV Contains at least one of Si and Ge. When general formula (1) is made of a combination of these elements, the internal quantum efficiency IQE of the first wavelength-converted light 7 is likely to be higher, which is preferable.

[0051] In the general formula (1), M II contains at least one of Ca and Sr, and M IV It is preferable that general formula (1) is made of a combination of these elements, since this tends to further increase the internal quantum efficiency IQE of the first wavelength-converted light 7.

[0052] In the general formula (1), M II contains Sr, M IV Contains at least one of Si and Ge. When general formula (1) is made of a combination of these elements, the internal quantum efficiency IQE of the first wavelength converted light 7 is likely to be further increased, which is preferable.

[0053] In the general formula (1), M IIcontains Sr and M IV contains Ge. It is preferable that the general formula (1) consists of a combination of these elements because the internal quantum efficiency IQE of the first wavelength-converted light 7 is likely to be particularly high.

[0054] In the general formula (1), when x and z satisfy x - 0.1 ≤ z ≤ x + 0.1, the charge balance of the first phosphor 4 represented by the general formula (1) is maintained, and the structure of the first phosphor 4 is stable, which is preferable.

[0055] In the first phosphor 4 represented by the general formula (1), Cr 3+ is, for example, replaced with a part of M III (at the B site). In this case, the general formula (1) can be represented by the following general formula (3). [Chemical formula 4] (Gd 1-x-y , Ln y , M II x )3(M III 1-p , Cr p )2(Ga 1-z , M IV z )3O 12 ···(3) (In the formula, Ln is one or more elements selected from La, Pr, Nd, Sm, Eu, Tb, Dy, Ho, Er, Yb, and Lu, M II is a divalent element, M III is a trivalent element, M IV is a tetravalent element, and x, y, and z satisfy 0 < x < 0.5, 0 ≤ y < 0.5, 0 < z < 0.5, 0.001 < p < 0.1) In the general formula (3), p is preferably 0.005 < p < 0.08, more preferably 0.01 < p < 0.05. It is preferable because the external quantum efficiency EQE is likely to be high when p is within the above range.

[0056] The first wavelength-converted light 7 has a fluorescence peak FP1 in the wavelength range of 750 nm or more and less than 900 nm. The first wavelength-converted light 7 preferably has a fluorescence peak FP1 in the wavelength range of 770 nm or more and less than 900 nm, more preferably in the wavelength range of 780 nm or more and less than 900 nm.

[0057] It is preferable that the fluorescence spectrum F1 of the first wavelength converted light 7 has a fluorescence peak FP1 within the above wavelength range, because it emits only light in the red to near infrared region, which is suitable for acquiring vital information such as blood pressure, pulse wave, and blood vessel information deep within the body.

[0058] If the fluorescence spectrum F1 of the first wavelength converted light 7 has a fluorescence peak FP1 within the wavelength range of 900 nm or more, this is not preferable because light energy is likely to be wasted by emitting light in a wavelength range where the light receiving sensitivity of a typical CMOS image sensor is very low.

[0059] The first wavelength-converted light 7 has a fluorescence peak FP1 having a half-width of typically 110 nm or more and less than 250 nm, the half-width of which is in the wavelength range of 750 nm or more and less than 900 nm. The first wavelength-converted light 7 has a fluorescence peak FP1 having a half-width of preferably 120 nm or more and less than 220 nm.

[0060] If the half-width of the fluorescence peak FP1 is within the above range, the fluorescence peak FP1 is broad, and therefore, the low near-infrared sensitivity of an image sensor such as a Si-based CMOS can be broadly compensated for, enabling highly accurate sensing. use There is a risk of reduced efficiency.

[0061] The first wavelength-converted light 7 typically has a 1 / e afterglow value of 1 μsec or more and less than 100 μsec. The first wavelength-converted light 7 preferably has a 1 / e afterglow value of 1 μsec or more and less than 80 μsec. Here, the 1 / e afterglow value means the time it takes for the emission intensity to become 1 / e. It is preferable that the 1 / e afterglow value of the first wavelength-converted light 7 is within the above range, since it is possible to control the output and stopping of near-infrared light with good responsiveness in response to the operation of outputting and stopping the primary light 6 emitted from the solid-state light source 2.

[0062] <Sealing material> In the wavelength converter 3, the first phosphor 4 is contained in the sealing material 5. Preferably, the first phosphor 4 is dispersed in the sealing material 5. When the first phosphor 4 is dispersed in the sealing material 5, it becomes possible to efficiently absorb the primary light 6 emitted by the solid-state light source 2 and efficiently convert the wavelength of the light into near-infrared light. Furthermore, when the first phosphor 4 is dispersed in the sealing material 5, it becomes easy to form the wavelength converter 3 into a sheet or film.

[0063] The sealing material 5 is made of at least one of an organic material and an inorganic material. The sealing material 5 is preferably made of at least one of a transparent (light-transmitting) organic material and a transparent (light-transmitting) inorganic material. Examples of the organic sealing material include transparent organic materials such as silicone resin. Examples of the inorganic sealing material include transparent inorganic materials such as low-melting point glass.

[0064] The wavelength converter 3 is preferably made of an inorganic material. Here, the term "inorganic material" refers to materials other than organic materials, and is a concept that includes ceramics and metals. The wavelength converter 3 made of an inorganic material has higher thermal conductivity than wavelength converters containing organic materials such as sealing resin, making it easier to design for heat dissipation. Therefore, even if the first phosphor 4 is photoexcited at high density by the primary light 6 emitted from the solid-state light source 2, the temperature rise of the wavelength converter 3 can be effectively suppressed. As a result, the temperature quenching of the first phosphor 4 in the wavelength converter 3 is suppressed, and high-output light emission is possible.

[0065] When the wavelength converter 3 is made of an inorganic material, the sealing material 5 is preferably made of an inorganic material. Moreover, zinc oxide (ZnO) is preferable as the inorganic material for the sealing material 5. When the sealing material 5 is made of an inorganic material, the heat dissipation property of the first phosphor 4 is further improved, so that a decrease in the output of the first phosphor 4 due to temperature quenching is suppressed, and it becomes possible to emit high-output near-infrared light.

[0066] As a modification of the light emitting device 1A, the wavelength converter 3 may be replaced with a wavelength converter that does not include the sealing material 5. In this case, an organic or inorganic binder may be used to bond the first phosphors 4 together. The first phosphors 4 may also be bonded together by a thermal reaction of the first phosphors 4. As the binder, a commonly used resin-based adhesive, ceramic fine particles, low-melting glass, or the like may be used. A wavelength converter that does not include the sealing material 5 allows the thickness of the wavelength converter to be reduced.

[0067] (action) The operation of the light emitting device 1A will be described. As shown in FIG. 1, first, the primary light 6 emitted from the solid-state light source 2 is irradiated onto the front surface 3a of the wavelength converter 3A. The irradiated primary light 6 passes through the wavelength converter 3A. Then, when the primary light 6 passes through the wavelength converter 3A, the first phosphor 4 contained in the wavelength converter 3A absorbs a part of the primary light 6 and emits the first wavelength-converted light 7. In this way, output light 90 including the primary light 6 and the first wavelength-converted light 7 is emitted from the back surface 3b of the wavelength converter 3A.

[0068] The first wavelength-converted light 7 contains a near-infrared light component having a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. Therefore, output light 90 output from light emitting device 1A becomes near-infrared-containing light 50, which is light containing primary light 6 and first wavelength-converted light 7 containing a near-infrared light component.

[0069] (effect) The first phosphor 4 contained in the wavelength converter 3A of the light emitting device 1A emits first wavelength converted light 7 containing a large amount of near-infrared light components. Therefore, the wavelength converter 3A of the light emitting device 1A emits near-infrared-containing light 50 containing a near-infrared light component as output light 90.

[0070] Therefore, when output light 90 of light emitting device 1A is irradiated onto subject 110, good quality image data 170 in which the infrared to near infrared region is compensated can be obtained even when camera 150 using a CMOS image sensor with low light receiving sensitivity in the infrared to near infrared region is used. Therefore, light emitting device 1A can provide a phosphor and a light emitting device having high fluorescence intensity in the infrared to near infrared region NIR with wavelengths of 750 to 950 nm.

[0071] The light emitting device 1A can also be used in a light source 100A for a sensing system and an illumination system 300A for a sensing system, which will be described later.

[0072] Therefore, the light emitting device 1A can provide a light source for a sensing system and an illumination system for a sensing system that have high fluorescent intensity in the red to near infrared region NIR with wavelengths of 750 to 950 nm.

[0073] [Second embodiment] A light emitting device 1B(1) according to the second embodiment will be described. The light emitting device 1B according to the second embodiment includes a solid-state light source 2 and a wavelength converter 3B(3). The light emitting device 1B according to the second embodiment uses a wavelength converter 3B instead of the wavelength converter 3A of the light emitting device 1A according to the first embodiment. The wavelength converter 3B further includes a second phosphor 8 in addition to the wavelength converter 3A.

[0074] The light emitting device 1B emits, as output light 90, NIR+α light 80 containing near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and second wavelength-converted light 9 which is a light component other than the near-infrared light-containing light 50. For this reason, the light emitting device 1B can be said to be, in detail, a NIR+α light emitting device 40B(40) that emits NIR+α light 80.

[0075] (Wavelength converter) The wavelength converter 3B includes a first phosphor 4, a second phosphor 8, and a sealing material 5. In the wavelength converter 3B, the first phosphor 4 and the second phosphor 8 are contained in the sealing material 5. That is, the wavelength converter 3B of the light emitting device 1B further includes a second phosphor 8 that absorbs the primary light 6 and converts it into second wavelength-converted light 9 different from the first wavelength-converted light 7.

[0076] That is, the wavelength converter 3B includes a first phosphor 4 and a second phosphor 8 having a peak emission wavelength different from the peak emission wavelength of the first phosphor 4.

[0077] The wavelength converter 3B is the same as the wavelength converter 3A of the light emitting device 1 according to the first embodiment, except that it further includes a second phosphor 8. For this reason, the following description will mainly focus on the second phosphor 8, and descriptions of other configurations and functions will be omitted or simplified.

[0078] The light emitting device 1B including the wavelength converter 3B includes the wavelength converter 3B and a solid-state light source 2 having an emission peak on the shorter wavelength side than the emission peak of the first phosphor 4 and the emission peak of the second phosphor 8. Therefore, the light emitting device 1B includes the first phosphor 4, the second phosphor 8, and the solid-state light source 2.

[0079] <Second phosphor> The second phosphor 8 is a phosphor having a fluorescence peak wavelength different from that of the first phosphor 4. Here, the fluorescence peak wavelength of the first phosphor 4 is the wavelength of the fluorescence peak FP1 of the fluorescence spectrum F1 of the first wavelength-converted light 7. Moreover, the fluorescence peak wavelength of the second phosphor 8 is the wavelength of the fluorescence peak FP2 of the fluorescence spectrum E2 of the second wavelength-converted light 9. Therefore, the second phosphor 8 is a phosphor having a peak wavelength of the fluorescence peak FP2 of the second wavelength-converted light 9 that is different from the peak wavelength of the fluorescence peak FP1 of the first wavelength-converted light 7 of the first phosphor 4.

[0080] As the second phosphor 8, for example, a phosphor having a peak wavelength of a fluorescence peak FP2 of the second wavelength-converted light 9 that is shorter in wavelength than the peak wavelength of the fluorescence peak FP1 of the first wavelength-converted light 7 of the first phosphor 4 is used. As the second wavelength-converted light 9 emitted from such second phosphor 8, for example, visible light, white light, etc. is used.

[0081] The output light 90 output from the light emitting device 1B becomes NIR+α light 80 containing near-infrared light-containing light 50 containing the primary light 6 and the first wavelength-converted light 7, and second wavelength-converted light 9 which is a light component other than the near-infrared light-containing light 50. Here, the NIR+α light 80 means light containing near-infrared light-containing light 50 and a light component other than the near-infrared light-containing light 50. When the second wavelength-converted light 9 is visible light 60 such as white light 70, the NIR+α light 80 becomes light containing near-infrared light-containing light 50 and visible light 60 such as white light 70.

[0082] In the light emitting device 1B, the wavelength converter 3B further comprises a second phosphor 8 in addition to the first phosphor 4, so that the light emitting device 1B is capable of emitting NIR+α light 80 containing near-infrared light 50 and light components other than the near-infrared light 50 as output light 90.

[0083] In this way, when the wavelength converter 3B further comprises the second phosphor 8 in addition to the first phosphor 4, it becomes possible to control the shape and excitation characteristics of the fluorescence spectrum emitted from the wavelength converter 3B. Therefore, the spectral distribution of the output light of the obtained light emitting device 1B can be easily adjusted according to the application.

[0084] The second phosphor 8 is not particularly limited as long as the fluorescence peak wavelength of the fluorescence peak FP2 of the fluorescence spectrum F2 of the second wavelength-converted light 9 is different from the fluorescence peak wavelength of the fluorescence peak FP1 of the fluorescence spectrum F1 of the first wavelength-converted light 7 of the first phosphor 4.

[0085] The second phosphor 8 is preferably Ce. 3+ The second phosphor 8 includes a phosphor having a garnet crystal structure containing Ce. 3+It is preferable that the phosphor contains a phosphor having a garnet crystal structure containing the above-mentioned compound, since it has a fluorescent peak wavelength in the wavelength range of 500 nm to 600 nm and emits light in a broad band.

[0086] Ce 3+ As a phosphor having a garnet crystal structure containing 12 :Ce 3+ , Y3(Al,Ga)5O 12 :Ce 3+ , Lu3Al5O 12 :Ce 3+ , Lu2CaMg2Si3O 12 :Ce 3+ Such Ce 3+ When the second phosphor 8 containing a phosphor having a garnet crystal structure containing the above is used, it becomes possible to obtain output light having a large amount of green to yellow light components.

[0087] These second phosphors 8 absorb light in the wavelength range of 430 nm or more and 480 nm or less well, and convert it into green to yellow light having a maximum intensity in the wavelength range of 500 nm or more and less than 600 nm with high efficiency. For this reason, in the solid-state light source 2 that emits blue light as the primary light 6, the above-mentioned second phosphors 8 of By using this, it becomes possible to easily obtain visible light components.

[0088] When the wavelength converter 3B includes a first phosphor 4 and a second phosphor 8, the first phosphor 4 preferably emits first wavelength-converted light 7 by absorbing at least one of the primary light 6 emitted by the solid-state light source 2 and the second wavelength-converted light 9 emitted by the second phosphor 8. As described above, the first phosphor 4 is preferably a phosphor that absorbs the primary light 6 emitted by the solid-state light source 2 and emits the first wavelength-converted light 7, which is near-infrared light.

[0089] The first phosphor 4 may be a phosphor that absorbs the second wavelength-converted light 9 emitted by the second phosphor 8 and emits the first wavelength-converted light 7, which is near-infrared light. That is, the second phosphor 8 may be excited by the primary light 6 to emit the second wavelength-converted light 9, and the first phosphor 4 may be excited by the second wavelength-converted light 9 to emit the first wavelength-converted light 7. In this case, even if the first phosphor 4 is a phosphor that is hardly excited by the primary light 6, it can be excited by the fluorescence emitted by the second phosphor 8 via the second phosphor 8.

[0090] Therefore, when the first phosphor 4 absorbs the second wavelength-converted light 9 and emits the first wavelength-converted light 7, a phosphor that absorbs visible light can be selected as the first phosphor 4, broadening the options for the first phosphor 4 and facilitating industrial production of the light emitting device 1B. Furthermore, when the first phosphor 4 absorbs the second wavelength-converted light 9 and emits the first wavelength-converted light 7, the light emitting device 1B can emit the first wavelength-converted light 7 with a high intensity of the near-infrared light component.

[0091] The second phosphor 8 is composed of two or more kinds of Ce. 3+ The second phosphor 8 may contain a phosphor having a garnet crystal structure containing two or more kinds of Ce. 3+ It is preferable to include an activated phosphor since it will result in broader emission over a wider band.

[0092] (action) The operation of the light emitting device 1B will be described. As shown in FIG. 2, first, the primary light 6 emitted from the solid-state light source 2 is irradiated onto the front surface 3a of the wavelength converter 3B. The irradiated primary light 6 passes through the wavelength converter 3B. Then, when the primary light 6 passes through the wavelength converter 3B, the second phosphor 8 contained in the wavelength converter 3B absorbs a part of the primary light 6 and emits a second wavelength-converted light 9. Furthermore, the first phosphor 4 contained in the wavelength converter 3B absorbs a part of the primary light 6 and / or the second wavelength-converted light 9 and emits a first wavelength-converted light 7. In this way, output light 90 including the primary light 6, the first wavelength-converted light 7, and the second wavelength-converted light 9 is emitted from the back surface 3b of the wavelength converter 3B.

[0093] The first wavelength-converted light 7 contains a near-infrared light component having a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. Therefore, output light 90 output from light emitting device 1B is NIR+α light 80, which is light containing primary light 6, first wavelength-converted light 7 containing a near-infrared light component, and second wavelength-converted light 9.

[0094] (effect) The first phosphor 4 contained in the wavelength converter 3B of the light emitting device 1B emits first wavelength converted light 7 containing a large amount of near-infrared light components. Therefore, the wavelength converter 3B of the light emitting device 1B emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0095] Therefore, the light emitting device 1B has the same effects as the light emitting device 1A according to the first embodiment.

[0096] Furthermore, since the wavelength converter 3B of the light emitting device 1B further comprises the second phosphor 8, the spectral distribution of the output light of the light emitting device 1B can be easily adjusted according to the application.

[0097] Furthermore, the light emitting device 1B emits NIR+α light 80 containing near-infrared light 50 and visible light 60 such as white light 70 as output light 90. For this reason, the light emitting device 1B can be used as a lighting device.

[0098] Furthermore, according to the light emitting device 1B, by combining the visible light 60 such as white light 70 and the near-infrared light-containing light 50, it becomes possible to output the near-infrared light-containing light 50 having a wider band.

[0099] [Third embodiment] A light emitting device 1C(1) according to the third embodiment will be described. The light emitting device 1C according to the third embodiment includes a near-infrared light emitting device 10C(10) that emits near-infrared-containing light 50, and a white light emitting device 30C(30) that emits white light 70.

[0100] That is, the light emitting device 1C is a light emitting device including a near-infrared light emitting device 10C (10) which is a light emitting device that emits near-infrared light, and a white light emitting device 30C (30) which is a light emitting device that emits white light.

[0101] The light emitting device 1C emits, as output light 90, NIR+α light 80 containing near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and second wavelength-converted light 9 which is a light component other than the near-infrared light-containing light 50. Therefore, the light emitting device 1C can be said to be, in detail, a NIR+α light emitting device 40C(40) which emits NIR+α light 80.

[0102] (Near-infrared light emitting device) The near-infrared light emitting device 10C is a device that emits near-infrared-containing light 50. The near-infrared light emitting device 10C includes a solid-state light source 2 and a wavelength converter 3C (3). The solid-state light source 2 and the wavelength converter 3C of the near-infrared light emitting device 10C have the same configurations as the solid-state light source 2 and the wavelength converter 3A of the light emitting device 1A according to the first embodiment, respectively. That is, the near-infrared light emitting device 10C has the same configuration as the light emitting device 1A according to the first embodiment.

[0103] The output light 90 output from the near-infrared light emitting device 10C, like the output light 90 output from the light emitting device 1A, is near-infrared light-containing light 50, which is light containing primary light 6 and first wavelength-converted light 7 containing a near-infrared light component.

[0104] (White light emitting device) The white light emitting device 30C is a device that emits white light 70. The white light emitting device 30C includes a solid-state light source 2 and a white light wavelength converter 33C (33). The solid-state light source 2 of the white light emitting device 30C has the same configuration as the solid-state light source 2 of the light emitting device 1A according to the first embodiment.

[0105] The solid-state light source 2 constituting the near-infrared light emitting device 10C and the solid-state light source 2 constituting the white light emitting device 30C may have the same characteristics or may have different characteristics.

[0106] (Visible light emitting device) Although the white light emitting device 30C is a device that emits white light 70, a modified example may be used in which a visible light emitting device 20C (20) that emits visible light 60 is used instead of the white light emitting device 30C, if necessary. The visible light emitting device 20C includes a solid-state light source 2 and a visible light wavelength converter 23C (23). The visible light emitting device 20C can be produced, for example, by changing the solid-state light source 2, the second phosphor 8 in the white light wavelength converter 33C, and the like that constitute the white light emitting device 30C.

[0107] (White light wavelength converter) The white light wavelength converter 33C (33) includes a second phosphor 8 and a sealing material 5. The white light wavelength converter 33C corresponds to the wavelength converter 3B constituting the light emitting device 1B according to the second embodiment, in which the entirety of the first phosphor 4 is replaced with the second phosphor 8.

[0108] The white light wavelength converter 33C is the same as the wavelength converter 3B constituting the light emitting device 1B according to the second embodiment, except that all of the first phosphors 4 are replaced with second phosphors 8. Therefore, hereinafter, explanations of the configuration and operation will be omitted or simplified.

[0109] (Visible light wavelength converter) If necessary, a visible light wavelength converter 23C (23) may be used instead of the white light wavelength converter 33C. The visible light wavelength converter 23C includes a second phosphor 8 and a sealing material 5, similar to the white light wavelength converter 33C. The visible light wavelength converter 23C can be produced by changing the second phosphor 8, etc. in the white light wavelength converter 33C.

[0110] (action) The operation of the light emitting device 1C will now be described. As shown in Fig. 3, the operation of the light emitting device 1C is a combination of the operation of the near-infrared light emitting device 10C and the operation of the white light emitting device 30C.

[0111] The action of the near-infrared light emitting device 10C is the same as that of the light emitting device 1A according to the first embodiment, except that the near-infrared light emitting device 10C does not emit the output light 90. That is, first, the primary light 6 emitted from the solid-state light source 2 is irradiated onto the front surface 3a of the wavelength converter 3C. The irradiated primary light 6 passes through the wavelength converter 3C. Then, when the primary light 6 passes through the wavelength converter 3C, the first phosphor 4 contained in the wavelength converter 3C absorbs a part of the primary light 6 and emits the first wavelength-converted light 7. In this way, the near-infrared light-containing light 50 containing the primary light 6 and the first wavelength-converted light 7 is emitted from the back surface 3b of the wavelength converter 3C.

[0112] The action of the white light wavelength converter 33C is the same as that of the light emitting device 1B according to the second embodiment, except that there is no action by the first phosphor 4 and the output light 90 is not emitted. That is, first, the primary light 6 emitted from the solid-state light source 2 is irradiated onto the front surface 3a of the white light wavelength converter 33C. The irradiated primary light 6 passes through the white light wavelength converter 33C. Then, when the primary light 6 passes through the white light wavelength converter 33C, the second phosphor 8 included in the white light wavelength converter 33C absorbs a part of the primary light 6 and emits the second wavelength-converted light 9. In this way, white light 70, which is light including the primary light 6 and the second wavelength-converted light 9, is emitted from the back surface 3b of the white light wavelength converter 33C.

[0113] The action of the light-emitting device 1C is a combined action of the near-infrared light-emitting device 10C and the white light-emitting device 30C. When the near-infrared light-emitting device 10C and the white light-emitting device 30C are both operated, the action of the light-emitting device 1C is the sum of the action of the near-infrared light-emitting device 10C and the action of the white light-emitting device 30C. When only one of the near-infrared light-emitting device 10C and the white light-emitting device 30C is operated, the action of the light-emitting device 1C is the action of the near-infrared light-emitting device 10C or the action of the white light-emitting device 30C.

[0114] When the near-infrared light emitting device 10C and the white light emitting device 30C are operated together, the light emitting device 1C emits NIR+α light 80 including near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and white light 70, which is light including the primary light 6 and the second wavelength-converted light 9.

[0115] In addition, when using a visible light emitting device 20C using the visible light wavelength converter 23C instead of the white light wavelength converter 33C, the action of the visible light wavelength converter 23C is as follows. That is, first, the primary light 6 emitted from the solid light source 2 is irradiated onto the front surface 3a of the visible light wavelength converter 23C. The irradiated primary light 6 passes through the visible light wavelength converter 23C. Then, when the primary light 6 passes through the visible light wavelength converter 23C, the second phosphor 8 included in the visible light wavelength converter 23C absorbs a part of the primary light 6 and emits the second wavelength-converted light 9. In this way, visible light 60, which is light including the primary light 6 and the second wavelength-converted light 9, is emitted from the back surface 3b of the visible light wavelength converter 23C.

[0116] When the near-infrared light emitting device 10C and the visible light emitting device 20C are operated together, the light emitting device 1C emits NIR+α light 80 including near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and visible light 60 which is light including the primary light 6 and the second wavelength-converted light 9.

[0117] The first wavelength-converted light 7 contains a near-infrared light component having a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. Therefore, when the near-infrared light emitting device 10C and the white light emitting device 30C are operated together, the output light 90 output from the light emitting device 1C becomes NIR+α light 80, which is light containing the primary light 6, the first wavelength-converted light 7 containing a near-infrared light component, and the second wavelength-converted light 9.

[0118] (effect) The first phosphor 4 contained in the wavelength converter 3C constituting the near-infrared light emitting device 10C of the light emitting device 1C emits first wavelength converted light 7 containing a large amount of near-infrared light components. Moreover, the white light wavelength converter 33C constituting the white light emitting device 30C of the light emitting device 1C emits white light 70. Therefore, when the near-infrared light emitting device 10C and the white light emitting device 30C are both operated, the light emitting device 1C emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0119] Furthermore, when a visible light emitting device 20C is used in place of the white light emitting device 30C in the light emitting device 1C, the visible light wavelength converter 23C constituting the visible light emitting device 20C of the light emitting device 1C emits visible light 60. Therefore, when the near-infrared light emitting device 10C and the visible light emitting device 20C are both operated, the light emitting device 1C emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0120] Thus, the light emitting device 1C provides the same effects as the light emitting device 1A according to the first embodiment.

[0121] Furthermore, the light emitting device 1C can be used as a lighting device, similar to the light emitting device 1B according to the second embodiment, and is capable of outputting light 50 containing near-infrared light in a wider band.

[0122] Furthermore, in the light emitting device 1C, it is possible to operate at least one of the near-infrared light emitting device 10C and the white light emitting device 30C. Therefore, according to the light emitting device 1C, it is possible to change the intensity ratio between the near-infrared light-containing light 50 and the white light 70.

[0123] Furthermore, when the visible light emitting device 20C is used instead of the white light emitting device 30C, the light emitting device 1C can operate at least one of the near-infrared light emitting device 10C and the visible light emitting device 20C. Therefore, the light emitting device 1C using the visible light emitting device 20C instead of the white light emitting device 30C makes it possible to change the intensity ratio between the near-infrared light-containing light 50 and the visible light 60.

[0124] [Fourth embodiment] A light emitting device 1D(1) according to the fourth embodiment will be described. The light emitting device 1D according to the fourth embodiment includes a near-infrared light emitting device 10D(10) that is a device that emits near-infrared light-containing light 50, and a white light source 35 that is a light source that emits white light 70.

[0125] That is, the light emitting device 1D is a light emitting device including a near-infrared light emitting device 10D(10) that is a light emitting device that emits near-infrared light, and a white light source 35 that is a light source that emits white light .

[0126] The light emitting device 1D is different from the light emitting device 1C according to the third embodiment in that it uses a white light source 35 instead of the white light emitting device 30C, but is otherwise similar. Therefore, the following description will mainly focus on the white light source 35, and descriptions of other configurations and functions will be omitted or simplified.

[0127] The light emitting device 1D emits, as output light 90, NIR+α light 80 containing near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and second wavelength-converted light 9 which is a light component other than the near-infrared light-containing light 50. Therefore, the light emitting device 1D can be said to be, in detail, a NIR+α light emitting device 40D(40) that emits NIR+α light 80.

[0128] (Near-infrared light emitting device) The near-infrared light emitting device 10D includes a solid-state light source 2 and a wavelength converter 3D(3). The solid-state light source 2 and wavelength converter 3D of the near-infrared light emitting device 10D have the same configurations as the solid-state light source 2 and wavelength converter 3C of the near-infrared light emitting device 10C constituting the light emitting device 1C according to the third embodiment. Therefore, the solid-state light source 2 and wavelength converter 3D of the near-infrared light emitting device 10D have the same configurations as the solid-state light source 2 and wavelength converter 3A of the light emitting device 1A according to the first embodiment.

[0129] The output light 90 output from the near-infrared light emitting device 10D, like the output light 90 output from the near-infrared light emitting device 10C and the light emitting device 1A, is near-infrared light-containing light 50, which is light containing primary light 6 and first wavelength-converted light 7 containing a near-infrared light component.

[0130] (white light source) The white light source 35 is a light source that emits white light 70. As the white light source 35, a known light source can be used.

[0131] (visible light source) The white light source 35 is a light source that emits white light 70, but if necessary, a modified example may be used in which a visible light source 25 that emits visible light 60 is used instead of the white light source 35. As the visible light source 25, a known light source can be used.

[0132] (action) The operation of the light emitting device 1D will now be described. As shown in Fig. 4, the operation of the light emitting device 1D is a combination of the operation of the light emitting device 1C according to the third embodiment and the operation of the white light source .

[0133] The action of the near-infrared light emitting device 10D is the same as that of the near-infrared light emitting device 10C constituting the light emitting device 1C according to the third embodiment. That is, first, the primary light 6 emitted from the solid-state light source 2 is irradiated onto the front surface 3a of the wavelength converter 3D. The irradiated primary light 6 passes through the wavelength converter 3D. Then, when the primary light 6 passes through the wavelength converter 3D, the first phosphor 4 contained in the wavelength converter 3D absorbs a part of the primary light 6 and emits the first wavelength-converted light 7. In this way, the near-infrared light-containing light 50 containing the primary light 6 and the first wavelength-converted light 7 is emitted from the back surface 3b of the wavelength converter 3D.

[0134] The function of the white light source 35 is to emit white light 70 .

[0135] The action of the light-emitting device 1D is a combined action of the near-infrared light emitting device 10D and the white light source 35. When both the near-infrared light emitting device 10D and the white light source 35 are operated, the action of the light-emitting device 1D is the sum of the action of the near-infrared light emitting device 10D and the action of the white light source 35. When only one of the near-infrared light emitting device 10D and the white light source 35 is operated, the action of the light-emitting device 1D is the action of the near-infrared light emitting device 10D or the action of the white light source 35.

[0136] When the near-infrared light emitting device 10D and the white light source 35 are operated together, the light emitting device 10D emits near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and NIR+α light 80 including white light 70.

[0137] When using a visible light emitting device 20C using a visible light source 25 instead of the white light source 35, the function of the visible light source 25 is to radiate visible light 60.

[0138] When the near-infrared light emitting device 10D and the visible light source 25 are operated together, the light emitting device 10D emits near-infrared light-containing light 50, which includes the primary light 6 and the first wavelength-converted light 7, and NIR+α light 80, which includes visible light 60.

[0139] The first wavelength-converted light 7 contains a near-infrared light component having a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. Therefore, when the near-infrared light emitting device 10D and the white light source 35 are operated together, the output light 90 output from the light emitting device 1D becomes NIR+α light 80, which is light containing the primary light 6, the first wavelength-converted light 7 containing a near-infrared light component, and white light 70.

[0140] Furthermore, when the near-infrared light emitting device 10D and the visible light source 25 are operated together, the output light 90 output from the light emitting device 1D becomes NIR+α light 80, which is light containing the primary light 6, the first wavelength converted light 7 containing a near-infrared light component, and visible light 60.

[0141] (effect) The first phosphor 4 contained in the wavelength converter 3D constituting the near-infrared light emitting device 10D of the light emitting device 1D emits first wavelength converted light 7 containing a large amount of near-infrared light components. In addition, the white light source 35 of the light emitting device 1D emits white light 70. Therefore, when the near-infrared light emitting device 10D and the white light source 35 are operated together, the light emitting device 1D emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0142] Furthermore, when the visible light source 25 is used in place of the white light source 35 in the light emitting device 1D, the visible light source 25 of the light emitting device 1D emits visible light 60. Therefore, when the near-infrared light emitting device 10D and the visible light source 25 are both operated, the light emitting device 1D emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0143] Thus, the light emitting device 1D provides the same effects as the light emitting device 1A according to the first embodiment.

[0144] Furthermore, the light emitting device 1D can be used as a lighting device, similar to the light emitting device 1B according to the second embodiment, and is capable of outputting light 50 containing near-infrared light in a wider band.

[0145] Furthermore, in the light emitting device 1D, it is possible to operate at least one of the near-infrared light emitting device 10D and the white light source 35. Therefore, according to the light emitting device 1D, it is possible to change the intensity ratio between the near-infrared light-containing light 50 and the white light 70.

[0146] Furthermore, when the visible light source 25 is used instead of the white light source 35, the light emitting device 1D can operate at least one of the near-infrared light emitting device 10D and the visible light source 25. Therefore, the light emitting device 1D using the visible light source 25 instead of the white light source 35 makes it possible to change the intensity ratio between the near-infrared light-containing light 50 and the visible light 60.

[0147] [Fifth embodiment] A light emitting device 1E(1) according to the fifth embodiment will be described. The light emitting device 1E according to the fifth embodiment includes a solid-state light source 2, a wavelength converter 3E(3), and a light guide 15. The light emitting device 1E according to the fifth embodiment is obtained by adding the light guide 15 to the light emitting device 1A according to the first embodiment.

[0148] The light emitting device 1E according to the fifth embodiment differs from the light emitting device 1A according to the first embodiment only in the light guide 15. Therefore, hereinafter, the light guide 15 will be mainly described, and descriptions of the configurations and functions of the other members will be omitted or simplified.

[0149] In the light emitting device 1E, the solid-state light source 2 and the wavelength converter 3E are arranged at a distance from each other, and the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated to the wavelength converter 3E.

[0150] (Light guide) The light guide 15 is a member provided between the solid-state light source 2 and the wavelength converter 3E, and guides the primary light 6 to the wavelength converter 3E. The primary light 6 passes through the inside of the light guide 15.

[0151] In the light emitting device 1E, the solid-state light source 2 and the wavelength converter 3E are arranged at a distance from each other. However, the light guide 15 allows the primary light 6 emitted from the solid-state light source 2 to pass through the inside of the light guide 15 and be irradiated onto the wavelength converter 3E. By providing the light guide 15, the light emitting device 1E can efficiently guide the primary light 6 to the wavelength converter 3E even if the solid-state light source 2 and the wavelength converter 3E are arranged at a distance from each other.

[0152] The light guide 15 may be, for example, an optical fiber.

[0153] (action) The operation of the light emitting device 1E will be described. As shown in FIG. 5, first, the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated onto the front surface 3a of the wavelength converter 3E. The irradiated primary light 6 passes through the wavelength converter 3E. Then, when the primary light 6 passes through the wavelength converter 3E, the first phosphor 4 contained in the wavelength converter 3E absorbs a part of the primary light 6 and emits the first wavelength-converted light 7. In this way, the output light 90 including the primary light 6 and the first wavelength-converted light 7 is emitted from the back surface 3b of the wavelength converter 3E.

[0154] The first wavelength-converted light 7 contains a near-infrared light component having a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. Therefore, output light 90 output from light emitting device 1E becomes near-infrared-containing light 50, which is light containing primary light 6 and first wavelength-converted light 7 containing a near-infrared light component.

[0155] (effect) The first phosphor 4 contained in the wavelength converter 3E of the light emitting device 1E emits first wavelength converted light 7 that contains a large amount of near-infrared light components, and therefore the wavelength converter 3E of the light emitting device 1E emits output light 90 that contains a near-infrared light component.

[0156] Therefore, the light emitting device 1E exhibits the same effects as the light emitting device 1A according to the first embodiment.

[0157] Furthermore, since the light emitting device 1E includes the light guide 15, it is possible to configure the solid-state light source 2 and the wavelength converter 3 to be spaced apart from each other. Therefore, according to the light emitting device 1E, the degree of freedom in designing the arrangement of the solid-state light source 2 and the wavelength converter 3 in the light emitting device 1 is relatively large.

[0158] [Sixth embodiment] A light emitting device 1F(1) according to the sixth embodiment will be described. The light emitting device 1F according to the sixth embodiment includes a solid-state light source 2, a wavelength converter 3F(3), and a light guide 15. The light emitting device 1F according to the sixth embodiment is obtained by adding the light guide 15 to the light emitting device 1B according to the second embodiment.

[0159] The light emitting device 1F according to the sixth embodiment differs from the light emitting device 1B according to the second embodiment only in the light guide 15. The light guide 15 is the same as that used in the light emitting device 1E according to the fifth embodiment. Therefore, the following mainly describes the operation of the light emitting device 1F, and descriptions of the components are omitted or simplified.

[0160] In the light emitting device 1F, the solid-state light source 2 and the wavelength converter 3F are arranged at a distance from each other, and the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated to the wavelength converter 3F.

[0161] The light emitting device 1F emits, as output light 90, NIR+α light 80 containing near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and second wavelength-converted light 9 which is a light component other than the near-infrared light-containing light 50. Therefore, the light emitting device 1F can be said to be, in detail, a NIR+α light emitting device 40F(40) that emits NIR+α light 80.

[0162] (action) The operation of the light emitting device 1F will be described. As shown in FIG. 6, first, the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated onto the front surface 3a of the wavelength converter 3F. The irradiated primary light 6 passes through the wavelength converter 3F. Then, when the primary light 6 passes through the wavelength converter 3F, the second phosphor 8 contained in the wavelength converter 3F absorbs a part of the primary light 6 and emits the second wavelength-converted light 9. Furthermore, the first phosphor 4 contained in the wavelength converter 3F absorbs a part of the primary light 6 and / or the second wavelength-converted light 9 and emits the first wavelength-converted light 7. In this way, the output light 90 including the primary light 6, the first wavelength-converted light 7, and the second wavelength-converted light 9 is emitted from the back surface 3b of the wavelength converter 3F.

[0163] The first wavelength-converted light 7 contains a near-infrared light component having a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. Therefore, output light 90 output from light emitting device 1F is NIR+α light 80, which is light containing primary light 6, first wavelength-converted light 7 containing a near-infrared light component, and second wavelength-converted light 9.

[0164] (effect) The first phosphor 4 contained in the wavelength converter 3F of the light emitting device 1F emits first wavelength converted light 7 containing a large amount of near-infrared light components, and therefore the wavelength converter 3F of the light emitting device 1F emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0165] Therefore, the light emitting device 1F exhibits the same effects as the light emitting device 1A according to the first embodiment.

[0166] Furthermore, since the wavelength converter 3F of the light emitting device 1F further comprises the second phosphor 8, the spectral distribution of the output light of the light emitting device 1F can be easily adjusted according to the application.

[0167] Furthermore, since the light emitting device 1F includes the light guide 15, it is possible to configure the solid-state light source 2 and the wavelength converter 3 to be spaced apart from each other. Therefore, according to the light emitting device 1F, the degree of freedom in designing the arrangement of the solid-state light source 2 and the wavelength converter 3 in the light emitting device 1 is relatively large.

[0168] [Seventh embodiment] A light emitting device 1G(1) according to the seventh embodiment will be described. The light emitting device 1G according to the seventh embodiment includes a near-infrared light emitting device 10G(10) which is a device that emits near-infrared light-containing light 50, and a white light emitting device 30G(30) which is a device that emits white light 70. The near-infrared light emitting device 10G is obtained by adding a light guide 15 to the near-infrared light emitting device 10C of the light emitting device 1C according to the third embodiment. The white light emitting device 30G is obtained by adding a light guide 15 to the white light emitting device 30C of the light emitting device 1C according to the third embodiment.

[0169] The light emitting device 1G according to the seventh embodiment differs from the light emitting device 1C according to the third embodiment only in the light guide 15. The light guide 15 is the same as that used in the light emitting device 1E according to the fifth embodiment. Therefore, the following mainly describes the operation of the light emitting device 1G, and descriptions of the components are omitted or simplified.

[0170] The light emitting device 1G emits, as output light 90, NIR+α light 80 containing near-infrared light-containing light 50 including the primary light 6 and the first wavelength-converted light 7, and second wavelength-converted light 9 which is a light component other than the near-infrared light-containing light 50. Therefore, the light emitting device 1G can be said to be, in detail, an NIR+α light emitting device 40G(40) that emits NIR+α light 80.

[0171] (Near-infrared light emitting device) The near-infrared light emitting device 10G includes a solid-state light source 2, a wavelength converter 3G(3), and a light guide 15. The solid-state light source 2, the wavelength converter 3G, and the light guide 15 of the near-infrared light emitting device 10G have the same configurations as the solid-state light source 2, the wavelength converter 3E, and the light guide 15 of the light emitting device 1E according to the fifth embodiment, respectively. In the near-infrared light emitting device 10G of the light emitting device 1G, the solid-state light source 2 and the wavelength converter 3E are arranged apart from each other, and the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated to the wavelength converter 3G.

[0172] (White light emitting device) The white light emitting device 30G includes a solid-state light source 2, a white light wavelength converter 33G (33), and a light guide 15. The solid-state light source 2 and the white light wavelength converter 33G of the white light emitting device 30G have the same configurations as the solid-state light source 2 and the white light wavelength converter 33C of the light emitting device 1C according to the third embodiment, respectively. In the white light emitting device 30G of the light emitting device 1G, the solid-state light source 2 and the white light wavelength converter 33G (33) are arranged apart from each other, and the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated to the white light wavelength converter 33G.

[0173] The solid-state light source 2 constituting the near-infrared light emitting device 10G and the solid-state light source 2 constituting the white light emitting device 30G may have the same characteristics or may have different characteristics.

[0174] (Visible light emitting device) Although the white light emitting device 30G is a device that emits white light 70, a modified example may be used in which a visible light emitting device 20G (20) that emits visible light 60 is used instead of the white light emitting device 30G, if necessary. The visible light emitting device 20G includes a solid-state light source 2 and a visible light wavelength converter 23G (23). The visible light emitting device 20G can be produced, for example, by changing the solid-state light source 2, the second phosphor 8 in the white light wavelength converter 33G, and the like that constitute the white light emitting device 30G.

[0175] (action) The operation of the light emitting device 1G will be described below. As shown in Fig. 7, the operation of the light emitting device 1G is a combination of the operation of the near-infrared light emitting device 10G and the operation of the white light emitting device 30G.

[0176] The action of the near-infrared light emitting device 10G is the same as that of the light emitting device 1C according to the third embodiment, except that the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated onto the front surface 3a of the wavelength converter 3G. That is, first, the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated onto the front surface 3a of the wavelength converter 3G. The irradiated primary light 6 passes through the wavelength converter 3G. Then, when the primary light 6 passes through the wavelength converter 3G, the first phosphor 4 contained in the wavelength converter 3G absorbs a part of the primary light 6 and emits the first wavelength-converted light 7. In this way, the near-infrared light-containing light 50 containing the primary light 6 and the first wavelength-converted light 7 is emitted from the back surface 3b of the wavelength converter 3G.

[0177] The operation of the white light emitting device 30G is the same as that of the light emitting device 1C according to the third embodiment, except that the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated onto the front surface 3a of the white light wavelength converter 33G. That is, first, the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15 and is irradiated onto the front surface 3a of the white light wavelength converter 33G. The irradiated primary light 6 passes through the white light wavelength converter 33G. Then, when the primary light 6 passes through the white light wavelength converter 33G, the second phosphor 8 contained in the white light wavelength converter 33G absorbs a part of the primary light 6 and emits the second wavelength-converted light 9. In this way, white light 70, which is light including the primary light 6 and the second wavelength-converted light 9, is emitted from the back surface 3b of the white light wavelength converter 33G.

[0178] The function of the light emitting device 1G is a combination of the function of the near-infrared light emitting device 10G and the function of the white light emitting device 30G. The function of the light emitting device 1G is the same as that of the light emitting device 1C, except that the primary light 6 emitted from the solid-state light source 2 passes through the inside of the light guide 15, and therefore a description thereof will be omitted.

[0179] (effect) The first phosphor 4 contained in the wavelength converter 3G constituting the near-infrared light emitting device 10G of the light emitting device 1G emits first wavelength converted light 7 containing a large amount of near-infrared light components. Moreover, the white light wavelength converter 33G constituting the white light emitting device 30G of the light emitting device 1G emits white light 70. Therefore, when the near-infrared light emitting device 10G and the white light emitting device 30G are both operated, the light emitting device 1G emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0180] Furthermore, when a visible light emitting device 20G is used in place of the white light emitting device 30G in the light emitting device 1G, the visible light wavelength converter 23G constituting the visible light emitting device 20G of the light emitting device 1G emits visible light 60. Therefore, when the near-infrared light emitting device 10G and the visible light emitting device 20G are both operated, the light emitting device 1G emits NIR+α light 80 containing a near-infrared light component as output light 90.

[0181] Thus, the light emitting device 1G provides the same effects as the light emitting device 1A according to the first embodiment.

[0182] Furthermore, the light emitting device 1G can be used as a lighting device, similar to the light emitting device 1B according to the second embodiment, and is capable of outputting light 50 containing near-infrared light in a wider band.

[0183] Furthermore, in the light emitting device 1G, it is possible to operate at least one of the near-infrared light emitting device 10G and the white light emitting device 30G. Therefore, the light emitting device 1G makes it possible to change the intensity ratio between the near-infrared light-containing light 50 and the white light 70.

[0184] Furthermore, when the visible light emitting device 20G is used instead of the white light emitting device 30G, the light emitting device 1G can operate at least one of the near-infrared light emitting device 10G and the visible light emitting device 20G. Therefore, the light emitting device 1G using the visible light emitting device 20G instead of the white light emitting device 30G makes it possible to change the intensity ratio between the near-infrared light-containing light 50 and the visible light 60.

[0185] Furthermore, since the light emitting device 1G includes the light guide 15, it is possible to configure the solid-state light source 2 and the wavelength converter 3 to be spaced apart from each other. Therefore, according to the light emitting device 1G, the degree of freedom in designing the arrangement of the solid-state light source 2 and the wavelength converter 3 in the light emitting device 1 is relatively large.

[0186] Furthermore, since the light emitting device 1G includes the light guide 15, it is possible to configure the solid-state light source 2 and the white light wavelength converter 33 to be spaced apart from each other. Therefore, according to the light emitting device 1G, the degree of freedom in designing the arrangement of the solid-state light source 2 and the white light wavelength converter 33 in the light emitting device 1 becomes relatively large.

[0187] <Lighting system for sensing system> Next, sensing systems 500 (500A to 500D) according to the embodiments are shown in Figs. 8 to 11. Fig. 8 is a diagram showing an example of a sensing system according to a first embodiment. Fig. 9 is a diagram showing an example of a sensing system according to a second embodiment. Fig. 10 is a diagram showing an example of a sensing system according to a third embodiment. Fig. 11 is a diagram showing an example of a sensing system according to a fourth embodiment.

[0188] Specifically, Fig. 8 shows a sensing system 500A (500) according to a first embodiment. Fig. 9 shows a sensing system 500B (500) according to a second embodiment. Fig. 10 shows a sensing system 500C (500) according to a third embodiment. Fig. 11 shows a sensing system 500D (500) according to a fourth embodiment.

[0189] The sensing systems 500A to 500D according to the first to fourth embodiments include the light emitting devices 1A to 1D according to the first to fourth embodiments, respectively.

[0190] Specifically, the sensing system 500A according to the first embodiment includes an illumination system 300A (300) for a sensing system. The illumination system 300A for a sensing system includes the light emitting device 1A according to the first embodiment as a light source 100A (100) for a sensing system. That is, the light source 100A for a sensing system includes the light emitting device 1A according to the first embodiment. The illumination system 300A for a sensing system includes the light emitting device 1A according to the first embodiment. The light emitting device 1A can be said to be a near-infrared light emitting device 10A (10) that emits near-infrared light-containing light 50.

[0191] The sensing system 500B according to the second embodiment includes an illumination system 300B (300) for a sensing system. The illumination system 300B for a sensing system includes a light emitting device 1B according to the second embodiment as a light source 100B (100) for a sensing system. That is, the light source 100B for a sensing system includes the light emitting device 1B according to the second embodiment. The illumination system 300B for a sensing system also includes the light emitting device 1B according to the second embodiment. The light emitting device 1B can be said to be a NIR+α light emitting device 40B (40) that emits NIR+α light 80.

[0192] The sensing system 500C according to the third embodiment includes an illumination system 300C (300) for a sensing system. The illumination system 300C for a sensing system includes a light emitting device 1C according to the third embodiment as a light source 100C (100) for a sensing system. That is, the light source 100C for a sensing system includes the light emitting device 1C according to the third embodiment. The illumination system 300C for a sensing system also includes the light emitting device 1C according to the third embodiment. The light emitting device 1C can be said to be a NIR+α light emitting device 40C (40) that emits NIR+α light 80.

[0193] The sensing system 500D according to the fourth embodiment includes an illumination system 300D (300) for a sensing system. The illumination system 300D for a sensing system includes a light emitting device 1D according to the fourth embodiment as a light source 100D (100) for a sensing system. That is, the light source 100D for a sensing system includes the light emitting device 1D according to the fourth embodiment. The illumination system 300D for a sensing system includes the light emitting device 1D according to the fourth embodiment. The light emitting device 1D can be said to be a NIR+α light emitting device 40D (40) that emits NIR+α light 80.

[0194] [First embodiment] A sensing system 500A according to the first embodiment will be described. The sensing system 500A according to the first embodiment shown in FIG.

[0195] (Lighting system for sensing system) The sensing system illumination system 300A is an illumination system that uses a sensing system light source 100A (100) including a light emitting device 1A according to the first embodiment. Specifically, the sensing system illumination system 300A is an illumination system that incorporates a sensing system light source 100A (100) that is composed of a base material 12 and the light emitting device 1A according to the first embodiment formed in a recess of the base material 12.

[0196] The lighting system 300A for a sensing system includes a light source 100A for a sensing system, and the light source 100A for the sensing system includes the light emitting device 1A according to the first embodiment. That is, the lighting system 300A for a sensing system and the light source 100A for a sensing system include the light emitting device 1A.

[0197] The illumination system 300A for a sensing system emits output light 90 from a light emitting device 1A in a light source 100A for a sensing system as irradiation light 120.

[0198] The irradiated light 120 is light derived from the output light 90. In the illumination system 300A for sensing systems, the output light 90 is usually not emitted as it is, but is emitted as the irradiated light 120 after passing through a transparent plate or the like. Since the characteristics of the light may change between the output light 90 before passing through a transparent plate or the like and the irradiated light 120 after passing through a transparent plate or the like, for convenience, the light is expressed as the irradiated light 120 and the output light 90. When there is no member or field between the output light 90 and the irradiated light 120 that changes the physical characteristics of the light, the output light 90 and the irradiated light 120 are usually the same light.

[0199] (Spectral camera) The spectral camera 150 is, for example, a camera capable of acquiring image data 170 including four or more spectral images 160 with different wavelengths. The spectral camera 150 is not particularly limited as long as it is capable of acquiring image data 170 including four or more spectral images 160. For example, a multispectral camera, a hyperspectral camera, or the like is used as the spectral camera 150. A spectral camera such as a multispectral camera or a hyperspectral camera is preferable because it is easy to obtain highly accurate vital information 200 by comparing minute differences between four or more spectral images 160. In addition, if the spectral camera 150 is a CMOS multispectral camera, a CMOS hyperspectral camera, or the like using an inexpensive CMOS image sensor, it is preferable because the sensing system 500A can be manufactured at low cost.

[0200] 8, the spectral camera 150 is configured to acquire image data 170 by irradiating a subject 110 with irradiation light 120 from a sensing system illumination system 300A and capturing an image of a capture area 130 of the subject 110. The spectral camera 150 shown in FIG 8 is an example of a CMOS hyperspectral camera capable of acquiring image data 170 including seven spectral images 160 (160a, 160b, 160c, 160d, 160e, 160f, 160g).

[0201] In addition, when the CMOS image sensor used in the spectral camera 150 is inexpensive, the light receiving sensitivity of the CMOS image sensor is likely to be low in the red to near-infrared region NIR of wavelengths of 750 to 950 nm, as shown in Fig. 12. However, in the sensing system 500A, the light emitting device 1A included in the illumination system 300A for sensing system emits light containing first wavelength converted light 7 that has a fluorescence peak FP1 in the wavelength range of 750 nm or more and less than 900 nm and contains a large amount of near-infrared light. Specifically, the illumination system 300A for sensing system emits irradiation light 120 derived from output light 90 containing the first wavelength converted light 7 toward the subject 110.

[0202] Therefore, even when a spectral camera 150 using an inexpensive CMOS image sensor is used, the sensing system 500A can cover the shortcomings of the spectral camera 150. That is, according to the sensing system 500A, even when an inexpensive spectral camera 150 including an inexpensive CMOS image sensor is used, high-quality image data 170 can be acquired, and highly accurate vital information 200 can be obtained.

[0203] (computer) The computer 180 is a member capable of calculating the vital information 200 based on the image data 170 acquired from the spectral camera 150. Software including a vital data calculation algorithm capable of calculating the vital information 200 based on the image data 170 is installed in the computer 180. Furthermore, the computer 180 typically includes a display unit 190 capable of displaying the vital information 200, as shown in FIG. 12 . In the sensing system 500A, the display unit 190 is included in the computer 180. However, as a modified example of the sensing system 500A, the sensing system 500 may also be one in which the display unit 190 is separate from the computer 180.

[0204] The software installed in the computer 180 calculates vital information 200 using a vital data calculation algorithm and the image data 170. Examples of the vital information 200 include SpO2, blood pressure, pulse waves, and blood vessel information deep within the body. FIG. 12 shows an example of the vital information 200, which is a pulse wave.

[0205] The image data 170 includes seven spectral images 160a, 160b, 160c, 160d, 160e, 160f, and 160g, and therefore contains a larger amount of information than image data obtained by a conventional RGB camera. Therefore, the sensing system 500A can calculate highly accurate vital information 200 using the image data 170 containing a large amount of information.

[0206] (action) The operation of the sensing system 500A will be described. First, illumination light 120 is emitted from the sensing system illumination system 300A to the subject 110, as shown in Fig. 8. Irradiation light 120 is light derived from output light 90 that contains first wavelength-converted light 7, and contains a large amount of light components in the red to near-infrared region having a fluorescence peak FP1 within a wavelength range of 750 nm or more and less than 900 nm.

[0207] Next, the spectral camera 150 captures an image of the photographing area 130 of the subject 110 onto which the irradiating light 120 is irradiated, thereby acquiring image data 170. Note that if the spectral camera 150 is an inexpensive spectral camera including an inexpensive CMOS image sensor, the light receiving sensitivity of the CMOS image sensor tends to be low in the red to near-infrared region NIR of wavelengths from 750 to 950 nm.

[0208] However, in the sensing system 500A, the irradiation light 120 emitted from the lighting system 300A for the sensing system contains many light components in the red to near-infrared region because it is light derived from the output light 90 containing the first wavelength-converted light 7. Therefore, in the sensing system 500A, even if the spectral camera 150 is an inexpensive spectral camera, it is possible to acquire high-quality image data 170 by using it in combination with the lighting system 300A for the sensing system.

[0209] Moreover, the image data 170 obtained from the spectral camera 150 contains a large amount of information including seven spectral images 160a, 160b, 160c, 160d, 160e, 160f, and 160g. Therefore, the sensing system 500A can obtain high-quality image data 170 containing a large amount of information.

[0210] Furthermore, the computer 180 acquires image data 170 from the spectral camera 150, and calculates vital information 200 based on the image data 170. The vital information 200 is calculated, for example, by inputting seven spectral images 160a, 160b, 160c, 160d, 160e, 160f, and 160g included in the image data 170 to a vital data calculation algorithm in the computer 180. The computer 180 uses the image data 170, which is high quality and has a large amount of information, and is therefore able to calculate the vital information 200 with high accuracy. The calculated vital information 200 is displayed on the display unit 190 of the computer 180.

[0211] (effect) In the sensing system 500A, the light source 100A for the sensing system and the illumination system 300A for the sensing system each include a light emitting device 1A. Therefore, the light source 100A for the sensing system can provide a light source for the sensing system having high fluorescence intensity in the red to near infrared region NIR with wavelengths of 750 to 950 nm. Also, the illumination system 300A for the sensing system can provide an illumination system for the sensing system having high fluorescence intensity in the red to near infrared region NIR with wavelengths of 750 to 950 nm.

[0212] In addition, the sensing system light source 100A and the sensing system lighting system 300A of the sensing system 500A include the light emitting device 1A, and therefore have high fluorescence intensity in the infrared to near infrared region NIR of wavelengths of 750 to 950 nm. Therefore, according to the sensing system 500A, even if the spectral camera 150 is an inexpensive spectral camera, high-quality image data 170 can be obtained, and highly accurate vital information 200 can be calculated.

[0213] [Modification of the first embodiment] As a modification of the sensing system 500A according to the first embodiment, the sensing system 500 may include a light emitting device 1E instead of the light emitting device 1A. The light emitting device 1E differs from the light emitting device 1A in that a light guide 15 is provided between the solid-state light source 2 and the wavelength converter 3E. This modification of the sensing system 500A makes it possible to efficiently guide the primary light 6 to the wavelength converter 3E even if the solid-state light source 2 and the wavelength converter 3E in the light emitting device 1E are disposed apart from each other.

[0214] (action) The operation of the modified sensing system 500A is the same as that of the sensing system 500A, except that the primary light 6 can be efficiently guided to the wavelength converter 3E even if the solid-state light source 2 and the wavelength converter 3E in the light emitting device 1E are disposed apart from each other. Therefore, a description of the operation of the modified sensing system 500A will be omitted.

[0215] (effect) The effect of the modified example of the sensing system 500A is the same as that of the sensing system 500A, except that it is possible to efficiently guide the primary light 6 to the wavelength converter 3E even if the solid-state light source 2 and the wavelength converter 3E in the light emitting device 1E are arranged at a distance from each other.

[0216] [Second embodiment] A sensing system 500B (500) according to the second embodiment will be described. The sensing system 500B according to the second embodiment shown in FIG.

[0217] The sensing system 500B according to the second embodiment uses a sensing system illumination system 300B instead of the sensing system illumination system 300A of the sensing system 500A according to the first embodiment. Therefore, the sensing system 500B has the same configuration as the sensing system 500A except for the sensing system illumination system 300B. Hereinafter, the same components in the sensing system 500B and the sensing system 500A are denoted by the same reference numerals, and the description of the configurations and functions thereof will be omitted.

[0218] (Lighting system for sensing system) The lighting system for a sensing system 300B uses a light emitting device 1B instead of the light emitting device 1A of the lighting system for a sensing system 300A. Specifically, the light emitting device 1B uses a wavelength converter 3B instead of the wavelength converter 3A of the light emitting device 1A. The wavelength converter 3B further includes a second phosphor 8 in addition to the wavelength converter 3A. The configurations of the light emitting devices 1A and 1B and the wavelength converters 3A and 3B and the differences therebetween have been described above. Therefore, a description of the configuration of the lighting system for a sensing system 300B will be omitted.

[0219] (action) The operation of the sensing system 500B will be described. First, illumination light 120 is emitted from the sensing system illumination system 300B to the subject 110, as shown in Fig. 9. Irradiation light 120 is light derived from output light 90 that contains first wavelength-converted light 7 and second wavelength-converted light 9, and contains a large amount of light components in the red to near-infrared region having a fluorescence peak FP1 within a wavelength range of 750 nm or more and less than 900 nm.

[0220] Next, the spectral camera 150 captures an image of the photographing area 130 of the subject 110 onto which the irradiating light 120 is irradiated, thereby acquiring image data 170. Note that if the spectral camera 150 is an inexpensive spectral camera including an inexpensive CMOS image sensor, the light receiving sensitivity of the CMOS image sensor tends to be low in the red to near-infrared region NIR of wavelengths from 750 to 950 nm.

[0221] However, in the sensing system 500B, the irradiation light 120 emitted from the lighting system 300B for the sensing system contains a large amount of light components in the red to near-infrared region because the irradiation light 120 is derived from the output light 90 containing the first wavelength-converted light 7 and the second wavelength-converted light 9. Therefore, in the sensing system 500B, even if the spectral camera 150 is an inexpensive spectral camera, it is possible to acquire high-quality image data 170 by using it in combination with the lighting system 300B for the sensing system.

[0222] The operation of the sensing system 500B after acquiring the image data 170 is the same as the operation of the sensing system 500A after acquiring the image data 170, and therefore a description thereof will be omitted.

[0223] (effect) In the sensing system 500B, the light source 100B for the sensing system and the illumination system 300B for the sensing system include a light emitting device 1B. Therefore, the light source 100B for the sensing system can provide a light source for the sensing system having high fluorescence intensity in the red to near infrared region NIR of wavelengths 750 to 950 nm. Also, the light source 100B for the sensing system and the illumination system 300B for the sensing system can provide a light source for the sensing system and an illumination system for the sensing system having high fluorescence intensity in the red to near infrared region NIR of wavelengths 750 to 950 nm.

[0224] Furthermore, the sensing system light source 100B and the sensing system illumination system 300B of the sensing system 500B include a light emitting device 1B, and therefore have high fluorescence intensity in the infrared to near infrared region NIR of wavelengths of 750 to 950 nm. Therefore, according to the sensing system 500B, even if the spectral camera 150 is an inexpensive spectral camera, high-quality image data 170 can be obtained, and highly accurate vital information 200 can be calculated.

[0225] Furthermore, the wavelength converter 3B of the light emitting device 1B further includes a second phosphor 8. Therefore, according to the light source for sensing system 100B, the illumination system for sensing system 300B, and the sensing system 500B, it becomes possible to easily adjust the spectral distribution of the output light depending on the application.

[0226] [Modification of the second embodiment] As a modification of the sensing system 500B according to the second embodiment, the sensing system 500 may include a light emitting device 1F instead of the light emitting device 1B. The light emitting device 1F differs from the light emitting device 1B in that a light guide 15 is provided between the solid-state light source 2 and the wavelength converter 3F. This modification of the sensing system 500B makes it possible to efficiently guide the primary light 6 to the wavelength converter 3F even if the solid-state light source 2 and the wavelength converter 3F in the light emitting device 1F are disposed apart from each other.

[0227] (action) The function of the modified sensing system 500B is the same as that of the sensing system 500B, except that it is possible to efficiently guide the primary light 6 to the wavelength converter 3F even if the solid-state light source 2 and the wavelength converter 3F in the light emitting device 1F are arranged at a distance from each other.

[0228] (effect) The effect of the modified example of the sensing system 500B is the same as that of the sensing system 500B, except that it is possible to efficiently guide the primary light 6 to the wavelength converter 3F even if the solid-state light source 2 and the wavelength converter 3F in the light emitting device 1F are arranged at a distance from each other.

[0229] [Third embodiment] A sensing system 500C (500) according to the third embodiment will be described. The sensing system 500C according to the third embodiment shown in FIG.

[0230] The sensing system 500C according to the third embodiment uses the lighting system 300C for the sensing system instead of the lighting system 300A for the sensing system of the sensing system 500A according to the first embodiment. Therefore, the sensing system 500C has the same configuration as the sensing system 500A except for the lighting system 300C for the sensing system. Hereinafter, the same reference numerals are given to the same configurations in the sensing system 500C and the sensing system 500A, and the description of the configurations and functions thereof will be omitted.

[0231] (Lighting system for sensing system) The lighting system for a sensing system 300C uses a light emitting device 1C instead of the light emitting device 1A of the lighting system for a sensing system 300A. Specifically, the light emitting device 1C is a light emitting device including a near-infrared light emitting device 10C which is a light emitting device that emits near-infrared light, and a white light emitting device 30C which is a light emitting device that emits white light 70. The configurations of the light emitting devices 1A and 1C and the differences therebetween have been described above. Therefore, a description of the configuration of the lighting system for a sensing system 300C will be omitted.

[0232] (action) The operation of the sensing system 500C will be described. As shown in FIG. 10, first, the illumination light 120 is emitted from the illumination system for sensing system 300C to the subject 110. When the near-infrared light emitting device 10C and the white light emitting device 30C are both operated, the illumination light 120 is light derived from the output light 90 including the first wavelength-converted light 7 having a fluorescence peak FP1 in the range of 750 nm or more and less than 900 nm, and the white light 70 which is the second wavelength-converted light 9. When only the near-infrared light emitting device 10C is operated, the illumination light 120 is light derived from the output light 90 including the first wavelength-converted light 7. When only the white light emitting device 30C is operated, the illumination light 120 is light derived from the output light 90 including the white light 70 which is the second wavelength-converted light 9.

[0233] Next, the spectral camera 150 captures an image of the photographing area 130 of the subject 110 onto which the irradiating light 120 is irradiated, thereby acquiring image data 170. Note that if the spectral camera 150 is an inexpensive spectral camera including an inexpensive CMOS image sensor, the light receiving sensitivity of the CMOS image sensor tends to be low in the red to near-infrared region NIR of wavelengths from 750 to 950 nm.

[0234] However, when at least the near-infrared light emitting device 10C is operated, the emitted irradiation light 120 is light derived from the output light 90 including the first wavelength converted light 7 having a fluorescence peak FP1 at least in the range of 750 nm or more and less than 900 nm. Therefore, the output light 90 includes many light components in the red to near-infrared region. Therefore, in the sensing system 500C, even if the spectral camera 150 is an inexpensive spectral camera, it is possible to acquire high-quality image data 170 by using it in combination with the lighting system for sensing system 300C.

[0235] The operation of the sensing system 500C after acquiring the image data 170 is the same as the operation of the sensing system 500A after acquiring the image data 170, and therefore a description thereof will be omitted.

[0236] (effect) In the sensing system 500C, the light source 100C for the sensing system and the illumination system 300C for the sensing system each include a light emitting device 1C. Therefore, the light source 100C for the sensing system can provide a light source for the sensing system having high fluorescence intensity in the red to near infrared region NIR with wavelengths of 750 to 950 nm. Also, the illumination system 300C for the sensing system can provide an illumination system for the sensing system having high fluorescence intensity in the red to near infrared region NIR with wavelengths of 750 to 950 nm.

[0237] Furthermore, the sensing system light source 100C and the sensing system illumination system 300C of the sensing system 500C include a light emitting device 1C, and therefore can increase the fluorescence intensity in the red to near infrared region NIR of wavelengths of 750 to 950 nm. Therefore, according to the sensing system 500C, even if the spectral camera 150 is an inexpensive spectral camera, high-quality image data 170 can be obtained, and therefore highly accurate vital information 200 can be calculated.

[0238] Furthermore, the white light wavelength converter 33C of the white light emitting device 30C of the light emitting device 1C further includes a second phosphor 8 that emits white light 70. Therefore, according to the light source for sensing system 100C, the illumination system for sensing system 300B, and the sensing system 500B, it becomes possible to easily adjust the spectral distribution of the output light depending on the application.

[0239] [Modification of the third embodiment] As a modification of the sensing system 500C according to the third embodiment, the sensing system 500 may include a light emitting device 1G instead of the light emitting device 1C. The light emitting device 1G is different from the light emitting device 1C in that a light guide 15 is provided between the solid light source 2 and the wavelength converter 3G, and between the solid light source 2 and the white light wavelength converter 33G. According to this modification of the sensing system 500C, even if the solid light source 2 and the wavelength converter 3G in the light emitting device 1G, and the solid light source 2 and the white light wavelength converter 33G are arranged apart from each other, the primary light 6 can be efficiently guided. That is, the primary light 6 can be efficiently guided to the wavelength converter 3G and the white light wavelength converter 33G.

[0240] (action) The function of the modified sensing system 500C is that even if the solid-state light source 2 and the wavelength converter 3G in the light-emitting device 1G and the solid-state light source 2 and the white light wavelength converter 33G are arranged apart from each other, the primary light 6 can be efficiently guided to the wavelength converter 3G. The other functions are the same as those of the sensing system 500C.

[0241] (effect) The effect of the modified sensing system 500C is that even if the solid-state light source 2 and the wavelength converter 3G in the light emitting device 1G are arranged apart from each other, the primary light 6 can be efficiently guided to the wavelength converter 3G. Other effects are the same as those of the sensing system 500C.

[0242] [Fourth embodiment] A sensing system 500D (500) according to the fourth embodiment will be described. 11 The sensing system 500D according to the fourth embodiment shown in FIG. 1 includes an illumination system 300D for sensing systems, a spectral camera 150, and a computer 180.

[0243] The sensing system 500D according to the fourth embodiment uses a sensing system illumination system 300D instead of the sensing system illumination system 300A of the sensing system 500A according to the first embodiment. Therefore, the sensing system 500D has the same configuration as the sensing system 500A except for the sensing system illumination system 300D. Hereinafter, the same components in the sensing system 500D and the sensing system 500A are denoted by the same reference numerals, and the description of the configurations and functions thereof will be omitted.

[0244] (Lighting system for sensing system) The lighting system for a sensing system 300D uses a light emitting device 1D instead of the light emitting device 1A of the lighting system for a sensing system 300A. Specifically, the light emitting device 1D is a light emitting device including a near-infrared light emitting device 10D which is a light emitting device that emits near-infrared light, and a white light source 35 which is a light source that emits white light 70. The configurations of the light emitting devices 1A and 1D and the differences therebetween have been described above. Therefore, a description of the configuration of the lighting system for a sensing system 300D will be omitted.

[0245] (action) The operation of the sensing system 500D will be described. As shown in FIG. 11, first, the illumination light 120 is emitted from the illumination system for sensing system 300D to the subject 110. When the near-infrared light emitting device 10D and the white light source 35 are both operated, the illumination light 120 is light derived from the output light 90 including the first wavelength-converted light 7 having a fluorescence peak FP1 in the range of 750 nm or more and less than 900 nm, and the white light 70 which is the second wavelength-converted light 9. When only the near-infrared light emitting device 10D is operated, the illumination light 120 is light derived from the output light 90 including the first wavelength-converted light 7. When only the white light source 35 is operated, the illumination light 120 is light derived from the output light 90 including the white light 70 which is the second wavelength-converted light 9.

[0246] Next, the spectral camera 150 captures an image of the photographing area 130 of the subject 110 onto which the irradiating light 120 is irradiated, thereby acquiring image data 170. Note that if the spectral camera 150 is an inexpensive spectral camera including an inexpensive CMOS image sensor, the light receiving sensitivity of the CMOS image sensor tends to be low in the red to near-infrared region NIR of wavelengths from 750 to 950 nm.

[0247] However, when at least the near-infrared light emitting device 10D is operated, the emitted irradiation light 120 is light derived from the output light 90 containing the first wavelength converted light 7 having a fluorescence peak FP1 at least in the range of 750 nm or more and less than 900 nm. Therefore, the output light 90 contains many light components in the red to near-infrared region. Therefore, in the sensing system 500D, even if the spectral camera 150 is an inexpensive spectral camera, it is possible to acquire high-quality image data 170 by using it in combination with the lighting system for sensing system 300D.

[0248] The operation of the sensing system 500D after acquiring the image data 170 is the same as the operation of the sensing system 500A after acquiring the image data 170, and therefore a description thereof will be omitted.

[0249] (effect) In the sensing system 500D, the light source 100D for the sensing system and the illumination system 300D for the sensing system each include a light emitting device 1D. Therefore, the light source 100D for the sensing system can provide a light source for the sensing system having high fluorescence intensity in the red to near infrared region NIR with wavelengths of 750 to 950 nm. Also, the illumination system 300D for the sensing system can provide an illumination system for the sensing system having high fluorescence intensity in the red to near infrared region NIR with wavelengths of 750 to 950 nm.

[0250] Furthermore, the sensing system light source 100D and the sensing system illumination system 300D of the sensing system 500D include a light emitting device 1D, and therefore can increase the fluorescence intensity in the red to near-infrared region NIR of wavelengths of 750 to 950 nm. Therefore, according to the sensing system 500D, even if the spectral camera 150 is an inexpensive spectral camera, high-quality image data 170 can be obtained, and therefore highly accurate vital information 200 can be calculated.

[0251] Furthermore, the light emitting device 1D further includes a white light source 35. Therefore, according to the light source 100D for a sensing system, the illumination system 300B for a sensing system, and the sensing system 500B, it becomes possible to easily adjust the spectral distribution of the output light depending on the application. EXAMPLES

[0252] The light emitting device of this embodiment will be described in more detail below with reference to examples and comparative examples, but this embodiment is not limited to these.

[0253] In the following Examples and Comparative Examples, the following compound powders were used as raw materials. Gadolinium oxide (Gd2O3): 4N purity, manufactured by Nippon Yttrium Co., Ltd. Lanthanum hydroxide (La(OH)3): 3N purity, manufactured by Shin-Etsu Chemical Co., Ltd. Gallium oxide (Ga2O3): 4N purity, manufactured by Asia Physical Materials Co., Ltd. Scandium oxide (Sc2O3): 4N purity, manufactured by Shin-Etsu Chemical Co., Ltd. Chromium oxide (Cr2O3): 3N purity, manufactured by High Purity Chemical Laboratory Co., Ltd. Calcium carbonate (CaCO3): 3N purity, manufactured by High Purity Chemical Laboratory Co., Ltd. Strontium carbonate (SrCO3): 3N purity, manufactured by High Purity Chemical Laboratory Co., Ltd. Silicon oxide (SiO2): 3N purity, manufactured by High Purity Chemical Laboratory Co., Ltd. Germanium oxide (GeO2): 3N purity, manufactured by High Purity Chemical Laboratory Co., Ltd.

[0254] [Example 1] (Preparation of phosphor) The oxide phosphor was synthesized using a preparation method using a solid-state reaction. Specifically, (GdCa)Ga 1.94 Cr 0.06 (GaSi)O 12 An oxide phosphor represented by the following composition formula was synthesized.

[0255] First, the stoichiometric compound (GdCa)Ga 1.94 Cr 0.06 (GaSi)O 12 The raw materials were then weighed so that the weight ratio of the raw materials was 1:1. Next, the raw materials were dry-mixed using a mortar and pestle to prepare a raw material to be fired.

[0256] The raw material for firing was transferred to an alumina crucible with a lid and fired in a box-type electric furnace in a CO atmosphere at 1400°C for 2 hours. The fired product was then lightly crushed to obtain the phosphor of Example 1 (Sample No. A1). Note that the sample after firing was (Gd2Ca)Ga 1.94 Cr 0.06 (GaSi)O 12 This was confirmed by X-ray diffraction. The production conditions and the composition formula of the oxide phosphor are shown in Table 1. The details of the composition of the oxide phosphor are shown in Table 2. FIG. 41 shows the results of X-ray diffraction. The oxide phosphor of sample No. A1, (GdCa)Ga 1.94 Cr 0.06 (GaSi)O 12is the oxide phosphor Gd3Ga of sample No. B1 of Comparative Example 1, which is the standard material. 1.94 Cr 0.06 GaO 12 This corresponds to a material in which some of the elements in the above have been replaced with Ca and Si. For this reason, "Ca-Si" is listed in the remarks column for sample No. A1 in Table 1.

[0257] [Table 1]

[0258] [Table 2]

[0259] (Evaluation of phosphors) <Measurement of fluorescence spectrum, wavelength of fluorescence peak, and half-width of fluorescence peak> The fluorescence spectrum of the phosphor was measured when excited at an excitation wavelength of 450 nm using Quantaurus-QY Plus (extended absolute PL quantum yield measurement device) C13534-02 (manufactured by Hamamatsu Photonics K.K.). FIG. 16 shows the fluorescence spectrum. In addition, the wavelength of the fluorescence peak and the half-width of the fluorescence peak were measured. Table 3 shows the results of the wavelength of the fluorescence peak and the half-width of the fluorescence peak.

[0260] <Measurements of internal quantum efficiency (IQE) and external quantum efficiency (EQE)> The internal quantum efficiency IQE and the external quantum efficiency EQE were measured using a Quantaurus-QY Plus (extended type absolute PL quantum yield measurement device) C13534-02 (manufactured by Hamamatsu Photonics K.K.). Specifically, the internal quantum efficiency IQE and the external quantum efficiency EQE were measured based on the fluorescence spectrum measured by exciting a sample solution containing a phosphor at an excitation wavelength of 450 nm. Table 3 shows the results of the internal quantum efficiency and the external quantum efficiency.

[0261] <Measurement of absorbance Abs> The absorbance Abs was measured using a Quantaurus-QY Plus (extended type absolute PL quantum yield measurement device) C13534-02 (manufactured by Hamamatsu Photonics K.K.). Specifically, the absorbance Abs was measured at a monitor wavelength of 770 nm based on the fluorescence spectrum measured by exciting a sample solution containing a phosphor at an excitation wavelength of 450 nm. Table 3 shows the absorbance results.

[0262] <1 / e persistence measurement> Using a Quantaurus-Tau (compact fluorescence lifetime measurement device) C11367-24 (manufactured by Hamamatsu Photonics K.K.), the fluorescence lifetime of the phosphor was measured at an excitation wavelength of 450 nm and a monitor wavelength of 770 nm, and the 1 / e afterglow value was measured. Table 3 shows the resulting 1 / e persistence values.

[0263] [Table 3]

[0264] [Comparative Example 1] (Preparation of phosphor) An oxide phosphor was synthesized in the same manner as in Example 1, except that an oxide phosphor (sample No. B1) having the composition shown in Table 1 was synthesized under the production conditions shown in Table 1. The detailed composition of the oxide phosphor is shown in Table 2. Figure 41 shows the results of X-ray diffraction. The oxide phosphors other than sample No. B1 (samples No. A1 to A25) are the same as the oxide phosphor Gd3Ga 1.94 Cr 0.06 GaO 12 Therefore, the oxide phosphor Gd3Ga in sample No. B1 is 1.94 Cr 0.06 GaO 12 was used as the standard substance.

[0265] (Evaluation of phosphors) <Measurement of fluorescence spectrum, wavelength of fluorescence peak, and half-width of fluorescence peak> In the same manner as in Example 1, the fluorescence spectrum, the wavelength of the fluorescence peak, and the half-width of the fluorescence peak of the phosphor were measured. FIG. 15 shows the fluorescence spectrum. Table 3 shows the results of the wavelength of the fluorescence peak and the half-width of the fluorescence peak.

[0266] <Measurement of internal quantum efficiency IQE, external quantum efficiency EQE, absorbance Abs and 1 / e afterglow value> In the same manner as in Example 1, the internal quantum efficiency IQE, the external quantum efficiency EQE, the absorbance Abs, and the 1 / e afterglow value of the phosphor were measured. Table 3 shows the measurement results.

[0267] [Examples 2 to 25] (Preparation of phosphor) Oxide phosphors were synthesized in the same manner as in Example 1, except that oxide phosphors (samples A2 to A25) having the compositions shown in Table 1 were synthesized under the production conditions shown in Table 1. Detailed compositions of the oxide phosphors (samples Nos. A2 to A25) are shown in Table 2. Results of X-ray diffraction of the oxide phosphors (samples Nos. A2 to A25) are shown in Fig. 41 to Fig. 46.

[0268] (Evaluation of phosphors) <Measurement of fluorescence spectrum, wavelength of fluorescence peak, and half-width of fluorescence peak> In the same manner as in Example 1, the fluorescence spectra, wavelengths of the fluorescence peaks, and half-widths of the fluorescence peaks of the phosphors (samples Nos. A2 to A25) were measured. 17 to 40 show the fluorescence spectra of the phosphors (samples A2 to A25). Table 3 shows the results of the fluorescence peak wavelength and the half width of the fluorescence peak for the phosphors (samples A2 to A25).

[0269] <Measurement of internal quantum efficiency IQE, external quantum efficiency EQE, absorbance Abs and 1 / e afterglow value> In the same manner as in Example 1, the internal quantum efficiency IQE, external quantum efficiency EQE, absorbance Abs, and 1 / e afterglow value of the phosphors (samples Nos. A2 to A25) were measured. Table 3 shows the measurement results of the phosphors (samples A2 to A25).

[0270] (Evaluation of Examples 1 to 25) It is apparent from Tables 2 and 3 that a phosphor having high fluorescence intensity in the red to near-infrared region NIR with wavelengths of 750 to 950 nm can be produced.

[0271] The entire contents of Patent Application No. 2021-106680 (filing date: June 28, 2021) are incorporated herein by reference.

[0272] Although the present embodiment has been described above, the present embodiment is not limited to this, and various modifications are possible within the scope of the gist of the present embodiment. [Industrial Applicability]

[0273] According to the present disclosure, it is possible to provide a phosphor, a light emitting device, a light source for a sensing system, and an illumination system for a sensing system, which have high fluorescence intensity in the red to near-infrared region NIR having a wavelength of 750 to 950 nm. [Explanation of symbols]

[0274] 1, 1A, 1B, 1C, 1D, 1E, 1F, 1G Light-emitting device 2 solid state light source 3, 3A, 3B, 3C, 3D, 3E, 3F, 3G wavelength converter 4. First Phosphor 6 primary light 8 Second Phosphor 10, 10A, 10C, 10D, 10E, 10G Near-infrared light emitting device 20, 20C, 20G Visible light emitting device 23, 23C Visible light wavelength converter 25 Visible light source 30, 30C, 30G White light emitting device 33, 33C White light wavelength converter 35 White light source 40, 40B, 40C, 40D, 40F, 40G NIR+α light emitting device 100, 100A, 100B, 100C, 100D Light source for sensing systems Lighting system for 300, 300A, 300B, 300C, 300D sensing systems

Claims

1. A phosphor represented by the following general formula (1) and having a fluorescence peak in the wavelength range of 750 nm or more and less than 900 nm. [Chemical formula 1] (Gd 1-x-y , Ln y , M II x ) 3 (M III 1-p ,Cr p ) 2(Ga 1-z , M IV z ) 3 O 12 ・・・(1) (In the formula, Ln is one or more elements selected from La, Pr, Nd, Sm, Eu, Tb, Dy, Ho, Er, Yb, and Lu; M II is a divalent element, M III is a trivalent element, M IV is a tetravalent element, and x, y, z, and p satisfy 0<x<0.5, 0≦y<0.5, 0<z<0.5, and 0.001<p<0.1.)

2. The phosphor according to claim 1 , which has a fluorescence peak in the wavelength range of 770 nm or more and less than 900 nm.

3. Said M II is a divalent element, and the M III is a trivalent element other than Gd and Ln, IV The phosphor according to claim 1 or 2, wherein is a tetravalent element.

4. Said M II contains at least one of Ca and Sr, III contains at least one of Ga and Sc, IV The phosphor according to claim 1 or 2, wherein:

5. 3. The phosphor according to claim 1, wherein in the general formula (1), x and z satisfy x-0.1≦z≦x+0.

1.

6. The phosphor according to claim 1 or 2, wherein the half-width of the fluorescence peak is 110 nm or more and less than 250 nm.

7. 3. The phosphor according to claim 1, wherein the 1 / e decay value is from 1 μsec to less than 100 μsec.

8. A light emitting device comprising: the phosphor according to claim 1 or 2; and a solid-state light source having an emission peak on the shorter wavelength side than the fluorescence peak of the phosphor.

9. 3. A light emitting device comprising: a first phosphor which is the phosphor according to claim 1 or 2; a second phosphor having a fluorescence peak wavelength different from a fluorescence peak wavelength of the first phosphor; and a solid-state light source having an emission peak on the shorter wavelength side than the fluorescence peak of the first phosphor and the fluorescence peak of the second phosphor.

10. A light emitting device comprising: a near-infrared light emitting device which is the light emitting device according to claim 8; and a white light emitting device which is a light emitting device that emits white light, or a white light source which is a light source that radiates white light.

11. A light source for a sensing system comprising the light emitting device according to claim 8.

12. An illumination system for a sensing system, comprising a light emitting device according to claim 8.

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