LIGHT-EMITTING DEVICE
Patent Information
- Application Number
- DE112023005403
- Authority / Receiving Office
- DE · DE
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-12-22
- Publication Date
- 2025-10-16
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
Technical area
[0001] The present disclosure relates to a light emitting device. State of the art
[0002] In recent years, LEDs have been used as light sources for vehicle lamps such as headlights. For example, Patent Document 1 discloses a light-emitting device comprising a combination of numerous light-emitting elements with different areas, thereby achieving a light distribution suitable for a headlight. List of cited documentsPatent literature
[0003] Patent Document 1: Japanese Patent Application Publication No. 2017-011 259 Brief explanation of the inventionProblem to be solved by the invention
[0004] The object of the present disclosure is to provide a light-emitting device having a high luminance region and a low luminance region in a light-emitting surface and having high visibility in each of the regions.
[0005] A light-emitting device according to certain embodiments of the present disclosure comprises: a first region and a second region configured to emit light with different luminances when the light-emitting device is turned on, wherein the luminance La of the first region is higher than the luminance Lb of the second region, an emission spectrum of a light emitted from the first region has a maximum intensity Ia max in a wavelength range of 400 nm to 500 nm, an intensity Ia 507 at a wavelength of 507 nm and an intensity Ia 555at a wavelength of 555 nm, an emission spectrum of a light emitted from the second region has an intensity Ib 507 at a wavelength of 507 nm and an intensity Ib 555 at a wavelength of 555 nm, and relative intensities Ira 507 , Ira 555 , Irb 507 and Irb 555 can be obtained by measuring the intensities Ia 507 , Ia 555 , Ib 507 and Ib 555 each by the maximum intensity Ia max where the relative intensity Ira 507 is lower than the relative intensity Irb 507 and the relative intensity Ira 555 is higher than the relative intensity Irb 555 . Advantageous effects of the invention
[0006] A light-emitting device according to an embodiment of the present disclosure includes a high luminance region and a low luminance region in a light-emitting surface and has high visibility in each of the regions. Brief explanation of the figures Fig. 1 is a schematic plan view showing an example of a light-emitting device according to a first embodiment. Fig. 2 is a graph showing first and second emission spectra and a luminous efficiency curve of the light-emitting device according to the first embodiment. Fig. 3 is a sectional view schematically illustrating an example of the light-emitting device according to the first embodiment. Fig. 4 is a sectional view schematically illustrating a modified example of the light-emitting device according to the first embodiment. Fig. 5 is a sectional view schematically illustrating an example of a method for manufacturing the light-emitting device according to the first embodiment. Fig. 6A is a plan view schematically illustrating an example of the method for manufacturing the light-emitting device according to the first embodiment. Fig. Figure 6B is a schematic sectional view taken along line AA in Fig. 6A. Fig. 7A is a schematic plan view showing an example of the method for manufacturing the light-emitting device according to the first embodiment. Fig. Figure 7B is a schematic sectional view taken along line BB in Fig. 7A. Fig. 8A is a schematic plan view showing an example of the method for manufacturing the light-emitting device according to the first embodiment. Fig.Figure 8B is a schematic sectional view taken along line CC in Fig. 8A. Fig. 9A is a schematic plan view showing an example of the method for manufacturing the light-emitting device according to the first embodiment. Fig. 9B is a schematic sectional view taken along the line DD in Fig. 9A. Fig. 10 is a schematic plan view showing an example of a light-emitting device according to a second embodiment. Fig. 11 is a schematic sectional view showing an example of the light-emitting device according to the second embodiment. Fig. 12 is a schematic sectional view showing an example of the light-emitting device according to the second embodiment. Fig.13 is a sectional view schematically illustrating an example of the light-emitting device according to the second embodiment. Fig. 14 is a sectional view schematically illustrating an example of the light-emitting device according to the second embodiment. Fig. 15 is a sectional view schematically illustrating an example of a light-emitting device according to a third embodiment. Fig. 16 is a sectional view schematically illustrating an example of the light-emitting device according to the third embodiment. Fig. 17 is a sectional view schematically illustrating an example of a light-emitting device according to a fourth embodiment. Fig. 18 is a graph showing first and second emission spectra and a luminous efficiency curve of the light-emitting device according to the fourth embodiment. Explanation of embodiments
[0007] In the light distribution of a headlight, it is desirable that the luminance be high in the central region of the irradiation surface and that the luminance decrease with increasing distance from the center. To counteract this, the inventors investigated a light-emitting device in which the luminance is high in parts of the light-emitting surface (this light-emitting device is referred to as a "partially high-luminance light-emitting device"). The part-high-luminance light-emitting device is provided with a low-luminance region and a high-luminance region by reducing the luminance in a partial region of the light-emitting surface.In the light-emitting device with high luminance parts, the emitted light from the high luminance region and the emitted light from the low luminance region have substantially the same emission spectrum.
[0008] As a result of research into further improving the performance of the light-emitting device with high luminance regions, the inventors identified a possibility that visibility differs between light emission from the high-luminance region and light emission from the low-luminance region. It is assumed that light emission from the high-luminance region achieves mesopic vision to photopic vision, and light emission from the low-luminance region achieves scotopic vision to mesopic vision.
[0009] In view of the foregoing, the inventors have conducted intensive studies to provide a light-emitting device with high luminance in parts in which visibility is improved for both the light emission from the high luminance region and the light emission from the low luminance region, and have completed the light-emitting device according to an embodiment of the present invention.
[0010] Embodiments will be described below with reference to the figures. The configurations described below are examples of light-emitting devices and methods for manufacturing the light-emitting devices to embody the technical idea of the present embodiment, and the present embodiment is not limited to the embodiments described below. Unless otherwise stated, dimensions, materials, shapes, relative arrangements, or the like of components described in the embodiments are not intended to limit the scope of the present invention thereto and are merely examples. Sizes, positional relationships, and the like of elements illustrated in the drawings may be exaggerated or simplified for the purpose of clarity of description.To avoid cluttering the drawings, some elements may be omitted, or end views showing only cut surfaces may be used as sectional views. The term "covering" here is not limited to cases of direct contact, but also includes cases where an element is covered indirectly, for example, via another element. Furthermore, "arranging" includes not only a case of arranging by direct contact, but also a case of indirect arrangement, for example, via another element. The term "top view" used here refers to a view from the light-emitting side of the light-emitting device. First embodiment
[0011] Fig. 1 is a plan view of a light-emitting device 100 according to a first embodiment.
[0012] Viewed from the luminous surface S, the light-emitting device 100 comprises a first region 110 and a second region 120, which emit light with different luminances when the light-emitting device 100 is switched on.
[0013] The luminance La of the first region 110 is higher than the luminance Lb of the second region 120. That is, the relationship "La > Lb" is satisfied. In this specification, the first region 110 and the second region 120 may be referred to as the "high luminance region 110" and the "low luminance region 120," respectively.
[0014] In this specification, the “high luminance region 110” is a region consisting of a part with a luminance of 80% or more and 100% or less of the highest luminance (referred to as maximum luminance La max) in the light-emitting device 100, and the “low luminance region 120” is a region consisting of a part having a luminance of 5% or more and less than 80% of the maximum luminance La max consists.
[0015] Fig.2 is a graph showing emission spectra. An emission spectrum of the emitted light from the first region (high luminance region) 110 of the light-emitting device 100 (referred to as the "first emission spectrum") and an emission spectrum of the emitted light from the second region (low luminance region) 120 of the light-emitting device 100 (referred to as the "second emission spectrum") are shown. These emission spectra are obtained by individually measuring the emission spectra of the emitted light from the high luminance region 110 and the emitted light from the low luminance region 120.As an example of a method for measuring the emission spectrum of the emitted light from each region, there is a method for measuring the emission spectrum in a state where a region other than the region to be measured in the light-emitting surface S of the light-emitting device 100 is covered with a light-absorbing material (mask). According to this method, only the emission spectrum of the emitted light from the region to be measured can be measured. Note that in a case where the luminance measuring device has a function for individually measuring the emission spectrum of the emitted light from each region, the luminance and emission spectrum of the emitted light from each region can be measured without using a mask.
[0016] The emission spectrum of the light-emitting device 100 is the sum of the first emission spectrum and the second emission spectrum.
[0017] The first emission spectrum has a maximum intensity Ia max in a wavelength range of 400 nm to 500 nm, an intensity Ia 507 at a wavelength of 507 nm and an intensity Ia 555 at a wavelength of 555 nm. In the first emission spectrum, which is Fig. 2, the maximum intensity Ia max the intensity at a wavelength λ1 max .
[0018] The second emission spectrum has an intensity Ib 507 at a wavelength of 507 nm and an intensity Ib 555 at a wavelength of 555 nm.
[0019] To compare intensities (emission intensities), the relative intensities of the emission intensities are compared with the relative intensity of the maximum intensity Ia max = 1. This means that the intensities Ia 507 , Ia 555 , Ib 507 and Ib 555 are determined by the maximum intensity Iamax divided to determine the relative intensities (relative emission intensities) Ira 507 , Ira 555 , Irb 507 and Irb 555 The relationship between these relative intensities is such that the relative intensity Ira 507 is lower than Irb 507 . That is, the relationship “Ira 507 < Irb 507 “ is fulfilled. In addition, the relative intensity Ira 555 higher than Irb 555 . That is, the relationship “Ira 555 > Irb 555 “ is fulfilled.
[0020] It is assumed that the light emission from the high luminance range 110 is perceived by the human eye as “photopic vision” and the light emission from the low luminance range 120 as “scotopic vision”. As in Fig.As shown in Figure 2, the luminous efficacy curve of the human eye differs between photopic vision and scotopic vision. To improve visibility in photopic vision, it is effective to illuminate with light that has a high emission intensity at 555 nm, which corresponds to the peak wavelength of the luminous efficacy curve of photopic vision. Similarly, to improve visibility in scotopic vision, it is effective to illuminate with light that has a high emission intensity at 507 nm, which corresponds to the peak wavelength of the luminous efficacy curve of scotopic vision.
[0021] In the light-emitting device 100 according to the first embodiment, the light from the high-luminance region 110 has a relative intensity at a wavelength of 555 nm that is higher than a relative intensity of the light from the low-luminance region 120, and thus a higher photopic relative luminous efficiency. On the other hand, the light from the low-luminance region 120 has a relative intensity at a wavelength of 507 nm that is higher than a relative intensity of the light from the high-luminance region 110, and thus a higher scotopic relative luminous efficiency. Therefore, in the light-emitting device 100, both the light from the high-luminance region 110 and the light from the low-luminance region 120 are highly visible.
[0022] In Fig.1 illustrates a boundary between the high-luminance region 110 and the low-luminance region 120 parallel to one side of the outer periphery of the light-emitting device 100. However, the shape of the boundary is not limited thereto, and the boundary can be changed into any shape to achieve a desired light distribution. For example, the boundary between the high-luminance region 110 and the low-luminance region 120 in a plan view may be inclined with respect to one side of the outer periphery of the light-emitting device 100. Furthermore, the boundary between the high-luminance region 110 and the low-luminance region 120 in the plan view is not limited to a straight line but may be a curved line.Furthermore, the area ratio of the high luminance region 110 and the low luminance region 120 on the S side of the light-emitting surface of the light-emitting device 100 can also be appropriately adjusted according to the intended use.
[0023] A concrete example of the structure of the light-emitting device 100 is shown in Fig. 3 shown.
[0024] The light-emitting device 100 includes a first light-emitting layer 11 having an emission peak in a wavelength range of 400 nm to 500 nm and at least two wavelength conversion elements (a first wavelength conversion element 41 and a second wavelength conversion element 42) that convert a wavelength of the light emitted from the first light-emitting layer 11.
[0025] The first light-emitting layer 11 includes an electrode-forming surface 11b on which electrodes 16 are formed, a light-exiting surface 11a opposite the electrode-forming surface 11b, and a plurality of side surfaces 11c connecting the electrode-forming surface 11b and the light-exiting surface 11a. Light from the first light-emitting layer 11 can be emitted not only from the light-exiting surface 11a but also from the side surfaces 11c.
[0026] The wavelength conversion elements (the first wavelength conversion element 41 and the second wavelength conversion element 42) are arranged on the light exit surface 11a of the first light-emitting layer 11.
[0027] In this specification, the term "light-emitting layer" refers to a layered body consisting of a single layer or multiple layers that emits light when powered. The light-emitting layer is, for example, a semiconductor layered body in which a plurality of semiconductor layers are stacked.
[0028] Viewed from the luminous surface S of the light-emitting device 100, the first wavelength conversion element 41 is arranged in the first region (high luminance region) 110, and the second wavelength conversion element 42 is arranged in the second region (low luminance region) 120. The peak wavelength of the light wavelength converted by the first wavelength conversion element 41 is longer than the peak wavelength of the light wavelength converted by the second wavelength conversion element 42.
[0029] That is, the light from the high-luminance region 110 includes light that is part of the light from the first light-emitting layer 11 and has been shifted to the longer wavelength side by the first wavelength conversion element 41, and thus has a relatively high emission intensity on the long wavelength side (at a wavelength of 555 nm). Although the light from the low-luminance region 120 includes light that is part of the light from the first light-emitting layer 11 and has been shifted to the longer wavelength side by the second wavelength conversion element 42, the shift by the second wavelength conversion element 42 is small, so its emission intensity on the short wavelength side (at a wavelength of 507 nm) is relatively high.
[0030] With such a structure, it is possible to form the light-emitting device 100 in which the photopic relative luminous efficiency of the light from the high luminance region 110 is high and the scotopic relative luminous efficiency of the light from the low luminance region 120 is also high.
[0031] The light-emitting device 100 comprises in the Fig. 3, a plurality of first light-emitting layers 11. In this case, the current value for each first light-emitting layer 11 can be changed.
[0032] In a case where the light-emitting device 100 includes the plurality of first light-emitting layers 11, the plurality of first light-emitting layers 11 are laterally arranged so as not to overlap as viewed from the light-emitting surface S of the light-emitting device 100. In particular, as shown in Fig.3, it is advantageous that the light exit surfaces 11a of the plurality of first light-emitting layers 11 are arranged such that they are flush with one another. At least one first light-emitting layer 11 is preferably arranged in each of the first regions 110 and the second regions 120, as viewed from the side S of the light-emitting surface of the light-emitting device 100. Accordingly, the luminances of the first region 110 and the second region 120 can be individually controlled by the first light-emitting layers 11 arranged in the respective regions.
[0033] In the Fig.In the light-emitting device 100 illustrated in Figure 3, the current density applied to the first light-emitting layer 11 located in the first region (high luminance region) 110 is set higher than the current density applied to the first light-emitting layer 11 located in the second region (low luminance region) 120. The luminance of the light from the high luminance region 110 can be increased by relatively increasing the current density applied to the first light-emitting layer 11 located in the high luminance region 110, and the luminance of the light from the low luminance region 120 can be decreased by relatively decreasing the current density applied to the first light-emitting layer 11 located in the low luminance region 120.
[0034] The light-emitting device 100 may include a first light-emitting layer 11. In this case, however, in the light-emitting device 100 including only a first light-emitting layer 11, it is not possible to change the luminance of only a part of the light emitted from the light-emitting device 100 by changing the current value, and therefore it is necessary to reduce the luminance of a part of the light emitted from the first light-emitting layer 11, for example, by using a Fig. 15 shown light adjustment element 30 is used.
[0035] In a case where the light-emitting device 100 includes only one first light-emitting layer 11, both the first wavelength conversion element 41 and the second wavelength conversion element 42 are arranged on the light exit surface 11a of the one first light-emitting layer 11.
[0036] As in Fig. 3, when the boundary between the first wavelength conversion element 41 and the second wavelength conversion element 42 is perpendicular to the light emission surface S of the light-emitting device 100, the luminance contrast between the high luminance region 110 and the low luminance region 120 is high, and the difference between the first emission spectrum and the second emission spectrum is clear.
[0037] Moreover, in the light-emitting device 100 having the plurality of first light-emitting layers 11, when the position of the boundary between the first wavelength conversion element 41 and the second wavelength conversion element 42 is in the gap between the first light-emitting layers 11, the luminance contrast between the high luminance region 110 and the low luminance region 120 is higher when viewed from the S side of the light-emitting surface of the light-emitting device 100, and the difference between the first emission spectrum and the second emission spectrum is clear.
[0038] The light-emitting device 100 having such a structure and arrangement is suitable for a case where the high luminance region 110 and the low luminance region 120 in the light distribution of a headlight or the like are to be clearly separated from each other.
[0039] As in Fig. As shown in Figure 3, a first support member 51 having a light-transmitting property may be disposed on the light-exit surface 11a of the first light-emitting layer 11. The first support member 51 is a substrate supporting the first light-emitting layer 11 and may be a growth substrate when the first light-emitting layer 11 is formed by epitaxial growth.
[0040] In general, a light-emitting element may include the first support member 51 and the first light-emitting layer 11 formed on a surface of the first support member 51.
[0041] As in Fig.As shown in Figure 3, the light-emitting device 100 may include a light-guiding element 60 covering the side surface of the first support element 51. The light-guiding element 60 is translucent and guides light from the first light-emitting layer 11 to the first wavelength conversion element 41 or to the second wavelength conversion element 42. The light-guiding element 60 may cover the side surface of the first light-emitting layer 11. For example, a translucent plastic may be used as the light-guiding element 60.
[0042] In one example, the light guide element 60 has a shape in which the side surface is curved in cross-section. In the shape of the light guide element 60, the side surface may be inclined such that the width in cross-sectional view increases from a side surface of the first support element 51 toward the first wavelength conversion element 41 and the second wavelength conversion element 42. The cross-sectional shape of the side surface of the light guide element 60 may be linear or curved.
[0043] The light guide element 60 can also serve as an adhesive element that bonds the first support element 51 to the first wavelength conversion element 41 and the second wavelength conversion element 42.
[0044] As in Fig.As shown in Figure 3, the light-emitting device 100 may further include a light-transmitting element 20 disposed on the light-exit surface 11a of the first light-emitting layer 11. Transparent glass, for example, may be used as the light-transmitting element 20.
[0045] In a case where the light-emitting device 100 includes the light-transmitting element 20, the first wavelength conversion element 41 and the second wavelength conversion element 42 are preferably disposed between the first light-emitting layer 11 and the light-transmitting element 20. That is, the light-transmitting element 20 is preferably not disposed between the first wavelength conversion element 41 and the first light-emitting layer 11 and between the second wavelength conversion element 42 and the first light-emitting layer 11.
[0046] The first wavelength conversion element 41 and the second wavelength conversion element 42 contain, for example, a phosphor. The phosphor absorbs part of the light emitted by the first light-emitting layer 11 and converts the absorbed light into light of a different wavelength, thereby generating heat. Since the light-transmitting member 20 is not present between the first wavelength conversion element 41 and the first light-emitting layer 11, and between the second wavelength conversion element 42 and the first light-emitting layer 11, the heat generated by the phosphors contained in the first wavelength conversion element 41 and the second wavelength conversion element 42 can be easily dissipated toward the first light-emitting layer 11.This makes it possible to reduce deterioration of the properties of the phosphors (change in the wavelength shift amount at the time of wavelength conversion, deterioration of the phosphors) due to heat generation.
[0047] In a case where the first wavelength conversion element 41 and the second wavelength conversion element 42 are arranged between the first light-emitting layer 11 and the light-transmitting element 20, as shown in Fig. 3, a surface of the light-transmitting member 20 may serve as a light-emitting surface S of the light-emitting device 100.
[0048] When the light-emitting device 100 is mounted on a mounting substrate or the like, the light-emitting surface S of the light-emitting device 100 is typically picked up by suction with a suction device or the like, and the light-emitting device 100 is transported to a mounting position. When the light-emitting surface S of the light-emitting device 100 is the surface of the light-transmitting member 20, the light-emitting surface S of the light-emitting device 100 can be easily picked up with a suction device or the like.
[0049] The light-transmitting member 20 can serve as a base material for forming the first wavelength conversion element 41 and the second wavelength conversion element 42. The first wavelength conversion element 41 and the second wavelength conversion element 42 can be formed directly on a surface of the light-transmitting member 20 or formed on a surface of the light-transmitting member 20 via an intermediate layer (a light-transmitting resin or a light-transmitting inorganic element). Modified example
[0050] The Fig.The light-emitting device 200 shown in FIG. 4 differs from the light-emitting device 100 according to the first embodiment in that it includes a plurality of support elements, a plurality of light-transmitting elements 20, and a light-reflecting element 45 is disposed between the first wavelength conversion element 41 and the second wavelength conversion element 42. These differences will be mainly described.
[0051] The other structures are the same as those of the light-emitting device 100 according to the first embodiment, and accordingly, the description thereof will be omitted.
[0052] In the Fig.In the light-emitting device 200 shown in Fig. 4, the first support member 51 is arranged on the light exit surface 11a of the first light-emitting layer 11 arranged in the first region (high luminance region) 110, and the second support member 52 is arranged on the light exit surface 11a of the first light-emitting layer 11 arranged in the second region (low luminance region) 120.
[0053] The light guide element 60 is arranged between the first support element 51 and the second support element 52 and can act as an adhesive element that connects the first support element 51 and the second support element 52. The light guide element 60 can also act, for example, as an adhesive element that connects the first support element 51 and the first wavelength conversion element 41 and connects the second support element 52 and the second wavelength conversion element 42.
[0054] The light-emitting device 200 may comprise a plurality of light-transmitting elements. In the Fig. 4, the first light-transmitting element 21 is arranged with the first wavelength conversion element 41 in the high luminance region 110 and the second light-transmitting element 22 is arranged with the second wavelength conversion element 42 in the low luminance region 120. In the Fig. 4, a light-reflecting element 45 is arranged between the first light-transmitting element 21 and the second light-transmitting element 22 and between the first wavelength conversion element 41 and the second wavelength conversion element 42.
[0055] In the light-emitting device 200 having such a structure and arrangement, the luminance contrast between the high-luminance region 110 and the low-luminance region 120 is higher, and the difference between the first emission spectrum and the second emission spectrum is more pronounced. Therefore, this is suitable for a case where the high-luminance region 110 and the low-luminance region 120 in the light distribution of a headlight or the like are to be clearly separated.
[0056] Instead of the light-guiding element 60, the light-reflecting element 45 can be arranged between the first support element 51 and the second support element 52. Method for manufacturing the light-emitting device 100
[0057] A process for the production of the Fig.The light-emitting device 100 according to the first embodiment shown in Fig. 3 will be described in detail below.
[0058] As in Fig. 5, in the method for manufacturing the light-emitting device 100, the light-emitting element 10 and the wavelength conversion element 40 are provided separately, and then a first surface 10a of the light-emitting element 10 (corresponding to a second surface 51b of the first support member 51) and a first surface 40a of the wavelength conversion element 40 (the surface on which the first wavelength conversion element 41 and the second wavelength conversion element 42 are formed) are arranged opposite to each other and connected to each other via the light guide member 60.
[0059] That is, the method for manufacturing the light-emitting device 100 includes a step of providing the light-emitting element 10, a step of providing the wavelength conversion element 40, and a step of disposing the wavelength conversion element 40 on the light-emitting element 10.
[0060] The “light-emitting element 10” comprises the first support element 51 and the first light-emitting layer 11 arranged on the first surface 51a of the first support element 51.
[0061] The “wavelength conversion element 40” includes the light-transmitting element 20 and the first wavelength conversion element 41 and the second wavelength conversion element 42 arranged on the first surface 20a of the light-transmitting element 20. Step of providing the light-emitting element 10
[0062] In the step of providing the light-emitting element 10, the light-emitting element 10 is provided, which includes the first support member 51 and the first light-emitting layer 11. The light-emitting element 10 can be provided by forming the first light-emitting layer 11 on the surface of the first support member 51 to manufacture the light-emitting element 10, or can be provided, for example, by purchasing the already finished light-emitting element 10. Step for providing the wavelength conversion element 40
[0063] As in the Fig. 6A and Fig.As shown in Figure 6B, in the step of providing the wavelength conversion element 40, first, a first wavelength conversion layer 4100 covering a part of the upper surface of a light-transmitting plate 2000 is disposed on the light-transmitting plate 2000 in a flat plate shape. The shape of the first wavelength conversion layer 4100 disposed on the light-transmitting plate 2000 can have various shapes in plan view, such as a stripe shape, a dot shape, an island shape, and a lattice shape. In the present example, the plurality of first wavelength conversion layers 4100 are arranged in a stripe shape in plan view. The first wavelength conversion layer 4100 can be formed by printing using a mask.
[0064] Then, as in the Fig. 7A and Fig.As shown in Figure 7B, a frame body 7000 surrounding the first wavelength conversion layer 4100 is formed on the light-transmitting plate 2000 in a flat plate shape. The frame body 7000 may be formed before the formation of the first wavelength conversion layer 4100. The formation of the frame body 7000 may be omitted.
[0065] Then, as in the Fig. 8A and Fig. 8B, the second wavelength conversion layer 4200 is disposed within the frame body 7000 on the light-transmitting plate 2000 so as to cover surfaces of the light-transmitting plate 2000 exposed from the first wavelength conversion layer 4100. In this way, a central part 4000 of the wavelength conversion element 40 is manufactured. Then, as shown in the Fig. 9A and Fig.9B, the central portion 4000 is divided at desired positions to obtain the wavelength conversion elements 40. The light-transmitting plate 2000, the first wavelength conversion layer 4100, and the second wavelength conversion layer 4200 before the division become the light-transmitting element 20, the first wavelength conversion element 41, and the second wavelength conversion element 42, respectively, after the division.
[0066] Although an example in which the first wavelength conversion layer 4100 is constructed and then the second wavelength conversion layer 4200 is constructed has been described above, the second wavelength conversion layer 4200 may also be constructed before the first wavelength conversion layer 4100.
[0067] Although a method of simultaneously providing the plurality of wavelength conversion elements 40 by dividing the central part 4000 was described above, the wavelength conversion elements 40 may be provided individually. That is, the step of providing the wavelength conversion element 40 may include a step of disposing it on the light-transmitting member 20 with the first wavelength conversion element 41 covering a part of the first surface 20a of the light-transmitting member 20, and a step of disposing the second wavelength conversion element 42 covering the light-transmitting member 20 exposed from the first wavelength conversion element 41. Alternatively, the wavelength conversion element 40 may be provided, for example, by purchasing an already manufactured wavelength conversion element 40.
[0068] Note that either the step of providing the light-emitting element or the step of providing the wavelength conversion element may be performed before the other step, or these steps may be performed in parallel.
[0069] Step of attaching the wavelength conversion element 40 to the light-emitting element 10
[0070] As in Fig.As shown in Fig. 5, the wavelength conversion element 40 is arranged on the first surface 10a of the light-emitting element 10. The wavelength conversion element 40, which includes the first wavelength conversion element 41, the second wavelength conversion element 42, and the light-transmitting member 20 supporting the first wavelength conversion element 41 and the second wavelength conversion element 42, is arranged such that the first surface 40a of the wavelength conversion element 40 is arranged on a side 10a of a first surface of the light-emitting element 10 (corresponding to the second surface 51b of the first support member 51 of the light-emitting element 10).At this time, the wavelength conversion element 40 is positioned so that the first light-emitting layer 11 of the light-emitting element 10 and the first wavelength conversion element 41 and the second wavelength conversion element 42 of the wavelength conversion element 40 are in a suitable positional relationship with each other in a plan view.
[0071] The wavelength conversion element 40 is attached to the first support element 51, for example, with an adhesive element.
[0072] Furthermore, the light guide member 60 covering the side surfaces of the first support member 51 may be formed of a light-transmitting resin or plastic material or the like.
[0073] The plastic material for forming the light guide element 60 can also be used as an adhesive element. The light guide element 60 can be formed by providing a resin material between the first support element 51 and the wavelength conversion element 40 to bond these elements, and the plastic material further extends to the side surfaces of the first support element 51 ( Fig. 3). The wavelength conversion element 40 may be connected to the first support member 51 by a direct bonding method without using an adhesive member. Second embodiment
[0074] A light-emitting device 300 according to a Fig.10 comprises, as viewed from the light-emitting surface S of the light-emitting device 300, a third region 130 between the first region (high luminance region) 110 and the second region (low luminance region) 120.
[0075] The luminance Lc of the third region 130 is equal to or lower than the luminance La of the first region 110 and equal to or higher than the luminance Lb of the second region 120. In the present description, the third region 130 may be referred to as the “medium luminance region 130.”
[0076] The medium luminance region 130 is located between the low luminance region 120 and the high luminance region 110. The luminance Lc of the medium luminance region 130 is equal to or higher than the luminance Lb of the low luminance region 120 and equal to or lower than the luminance La of the high luminance region 110. This means that the medium luminance region 130 is a region that emits light with medium luminance.
[0077] As described in detail below, the high luminance region 110 and the luminance region 120 have a small luminance deviation (luminance difference over distance) in each of the regions.
[0078] The 130 medium luminance range, on the other hand, shows a large luminance deviation or luminance variation in the range.
[0079] From a luminance difference ΔLa (cd) obtained by measuring two points in the high luminance region 110 and a distance Da (µm) between the two points, a luminance deviation = ΔLa / Da (referred to as “first luminance deviation Ha”) is determined in the high luminance region 110.
[0080] From a luminance difference ΔLb (cd) obtained by measuring two points in the low luminance region 120 and a distance Db (µm) between the two points, a luminance deviation (referred to as “second luminance deviation Hb”) = ΔLb / Db in the low luminance region 120 is determined.
[0081] Similarly, from a luminance difference ΔLc (cd) obtained by measuring two points in the central luminance range 130 and a distance Dc (µm) between the two points, a luminance deviation = ΔLc / Dc (referred to as “third luminance deviation Hc”) in the central luminance range 130 is determined.
[0082] The first luminance deviation Ha and the second luminance deviation Hb are smaller than the third luminance deviation Hc.
[0083] A specific method for determining the first luminance deviation Ha, the second luminance deviation Hb, and the third luminance deviation Hc will be described. First, the luminance of the light from each of the regions is measured while moving from the low luminance region 120 through the medium luminance region 130 to the high luminance region 110. Then, the luminance measurement results are plotted on a graph with the moving distance on the horizontal axis and the luminance on the vertical axis. In the resulting graph, the slope of the curve for the low luminance region 120 is the second luminance change Hb, the slope of the curve for the medium luminance region 130 is the third luminance change Hc, and the slope of the curve for the high luminance region 110 is the first luminance change Ha.
[0084] In addition, the high luminance range 110, the low luminance range 120 and the medium luminance range 130 can be determined from this diagram.
[0085] An area where the slope (luminance change) of the graph is small and the luminance is low (5% or more and less than 80% of the maximum luminance La max the light-emitting device 100), the low luminance region is 120.
[0086] The area of an area where the slope (change in luminance) of the graph is low and the luminance is high (between 80% and 100% each including the maximum luminance La max the light-emitting device 100), the high luminance region 110 is.
[0087] A region in which the slope (luminance change) of the graph is large and which has a luminance equal to or higher than the luminance Lb of the low luminance region 120 and equal to or lower than the luminance La of the high luminance region 110 is the medium luminance region 130. The luminance Lc of the medium luminance region 130 is preferably in a range of 10% to 100% of the maximum luminance La max .
[0088] As explained above, in the light-emitting device 100 according to the first embodiment, the luminance contrast at the boundary between the high luminance region 110 and the low luminance region 120 is high, and the difference between the first emission spectrum and the second emission spectrum is clear.
[0089] In contrast, the light-emitting device 300 according to the second embodiment includes the intermediate luminance region 130 between the high luminance region 110 and the low luminance region 120, so that the luminance contrast is small and the emission spectrum changes smoothly between the high luminance region 110 and the low luminance region 120. The light-emitting device 100 with such a structure and arrangement is suitable for a case where a luminance change between the high luminance region 110 and the low luminance region 120 in the light distribution of a headlight or the like is to be made smooth.
[0090] The light-emitting device 300 with the Fig. The area 130 of medium luminance shown in Figure 10 can be, for example, Fig. 11 shown structure can be obtained. Based on the Fig.11, the following mainly describes the difference between the light-emitting device 300 shown in Fig. 3, the description of the same structures as the light-emitting device 100 will be omitted.
[0091] In the Fig. In the light-emitting device 300 shown in Figure 11, the region 130 of medium luminance is arranged in a region in which a gap is present between adjacent light-emitting layers 11, as seen from the light-emitting surface S of the light-emitting device 300. Furthermore, in the Fig. 11, a part of the first wavelength conversion element 41 and a part of the second wavelength conversion element 42 are arranged in the central luminance region 130 when viewed from the light emission surface S of the light emission device 300.
[0092] In the example of Fig.11, as viewed from the luminous surface S side of the light-emitting device 300, a part of the first wavelength conversion element 41 and a part of the second wavelength conversion element 42 overlap. In a region where the two wavelength conversion elements 41 and 42 overlap ("overlap region"), a mixture of light from the high-luminance region 110 and light from the low-luminance region 120 is emitted. Therefore, the emission spectrum of the light from the overlap region is an emission spectrum obtained by adding the emission spectrum of the light from the high-luminance region 110 (first emission spectrum) and the emission spectrum of the light from the low-luminance region 120 (second emission spectrum).The luminance of the light from the overlapping region may be equal to or higher than the luminance Lb of the light from the low luminance region 120 and equal to or lower than the luminance La of the light from the high luminance region 110.
[0093] Also in the Fig. In the light-emitting device 100 shown in Fig. 3, depending on the difference in luminance between the high luminance region 110 and the adjacent low luminance region 120, a region in which there is a gap between the first light-emitting layers 11 may be the medium luminance region 130.
[0094] In the Fig.In the overlapping region shown in FIG. 11, the boundary between the first wavelength conversion element 41 and the second wavelength conversion element 42 is a downwardly convex curve in a sectional view (the first wavelength conversion element 41 is convex). However, the overlapping region is not limited to this, and the boundary between the first wavelength conversion element 41 and the second wavelength conversion element 42 may be a straight line or a curved line that is upwardly convex in a sectional view (the second wavelength conversion element 42 is convex).
[0095] In the Fig. 11, the width of the first wavelength conversion element 41 (the dimension in a direction parallel to the light-emitting surface S in Fig.11) from the first surface 40a of the wavelength conversion element 40 to the light-emitting surface S of the light-emitting device 100, while the width of the second wavelength conversion element 42 decreases. Alternatively, the width of the first wavelength conversion element 41 may decrease from the first surface 40a of the wavelength conversion element 40 to the light-emitting surface S of the light-emitting device 100, while the width of the second wavelength conversion element 42 increases. Modified examples
[0096] The Fig.The light-emitting devices shown in FIGS. 12 to 14 are modified examples of the light-emitting device 300 according to the second embodiment. The differences between each of these light-emitting devices and the light-emitting device 300 according to the second embodiment will be described. Note that the description of the same structures as the light-emitting device 300 according to the second embodiment will be omitted.
[0097] One in Fig.The light-emitting device 301 shown in Figure 12 includes a plurality of first light-emitting layers 11 having different dimensions in a sectional view taken in a direction parallel to the light-emitting surface S. When the light-emitting device 301 is viewed from the light-emitting surface S, the first light-emitting layer 11 having a relatively small area is disposed in the first region 110, and the first light-emitting layer 11 having a relatively large area is disposed in the second region 120. That is, the dimension (area) of the first light-emitting layer 11 disposed in the first region 110 is smaller than the dimension (area) of the first light-emitting layer 11 disposed in the second region 120.With this arrangement, when the same current is applied to both first light-emitting layers 11, the current density in the small-sized (small area) first light-emitting layer 11 is higher than the current density in the large-sized (large area) first light-emitting layer 11, so that the luminances of the high-luminance region 110 and the low-luminance region 120 can be easily adjusted.
[0098] In the Fig. In the light-emitting device 301 shown in Figure 12, the dimension (area) of the first light-emitting layer 11 arranged in the first region 110 is smaller than the dimension (area) of the first light-emitting layer 11 arranged in the second region 120. In a Fig.In contrast, in the light-emitting device 302 shown in Figure 13, the dimension of the first light-emitting layer 11 arranged in the first region 110 is larger than the dimension (area) of the first light-emitting layer 11 arranged in the second region 120. That is, when the light-emitting device 301 is viewed from the light-emitting surface S, the first light-emitting layer 11 with a relatively large area is arranged in the first region 110, and the first light-emitting layer 11 with a relatively small area is arranged in the second region 120. With such an arrangement, it is necessary to supply the respective first light-emitting layers 11 with different amounts of current.
[0099] It is necessary to supply a higher current to the first light-emitting layer 11 having a large dimension (large area) arranged in the first region 110, whereby the luminous flux from the first region 110 can be increased.
[0100] The first light-emitting layer 11 having a small size (small area) arranged in the second region 120 is supplied with a smaller current, but the current density is increased, so that the wavelength shift is reduced and the color deviation is improved.
[0101] Like from a Fig. As can be seen from the light-emitting device 303 shown in Figure 14, a plurality of support elements 51 and 52 can also be provided in the second embodiment.
[0102] As in the light-emitting device 200 according to the modified example of the first embodiment ( Fig. 4) is in the Fig.14, the first support member 51 is arranged on the light exit surface 11a of the first light-emitting layer 11 located in the first region (high luminance region) 110, and the second support member 52 is arranged on the light exit surface 11a of the first light-emitting layer 11 located in the second region (low luminance region) 120.
[0103] The Fig. The light-emitting device 303 shown in Figure 14 differs from the one shown in Fig. 4 in that there is an overlap region in which a part of the first wavelength conversion element 41 and a part of the second wavelength conversion element 42 overlap as viewed from the light emission surface S. Third embodiment
[0104] A light-emitting device 400 according to a third embodiment, which is shown in Fig.15, further includes the light adjusting element 30, which adjusts the luminance of the emitted light from the second region (low luminance region) 120.
[0105] The light adjustment element 30 is arranged on the light exit surface 11a of the first light-emitting layer 11 and extends over the entire low luminance region 120 as viewed from the luminous surface S of the light-emitting device 400.
[0106] The light-adjusting element 30 is an optical element that has both light reflection properties and light transmission properties. With the light-emitting device 400 having the light-adjusting element 30 in the low-luminance region 120, a portion of the light can be reflected from the first light-emitting layer 11 arranged in the low-luminance region 120. The light-adjusting element 30 can also reflect a portion of the light whose wavelength has been converted by the second wavelength conversion element 42.
[0107] With the light-emitting device 400 having the light adjusting element 30, the luminance of the light from the low luminance region 120 can be reduced without changing the dimensions of the first light-emitting layer 11 or the current density applied to the first light-emitting layer 11.
[0108] As the light adjusting element 30, a light-reflecting material, a light-transmitting material with a low refractive index, a distributed Bragg reflector (DBR), a wavelength filter, or the like can be used.
[0109] The light adjusting element 30 is arranged in the low luminance region 120 as viewed from the light-emitting surface S of the light-emitting device 400. In addition, the light adjusting element 30 can be arranged at any position in a sectional view as long as it is located between the light exit surface 11a of the first light-emitting layer 11 and the light-emitting surface S of the light-emitting device 400. For example, the light adjusting element 30, as shown in Fig.15, be arranged between the light-transmitting element 20 and the second wavelength conversion element 42. The concentration of the phosphor contained in the second wavelength conversion element 42 can be reduced and reliability improved by disposing the second wavelength conversion element 42 near the first support element 51.
[0110] The light adjusting element 30 can be arranged between the second wavelength conversion element 42 and the first support element 51. The light whose wavelength has been converted by the first wavelength conversion element 41 and the light whose wavelength has been converted by the second wavelength conversion element 42 are less likely to mix. Therefore, the light whose wavelength has been converted by the first wavelength conversion element 41 is less likely to mix with the emitted light from the low-luminance region 120, and the light whose wavelength has been converted by the second wavelength conversion element 42 is less likely to mix with the emitted light from the high-luminance region 110.Thus, the difference between the emission spectrum of the emitted light from the high luminance region 110 (first emission spectrum) and the emission spectrum of the emitted light from the low luminance region 120 (second emission spectrum) can be clearly seen.
[0111] In a case where the light adjusting element 30 is arranged between the second wavelength conversion element 42 and the first support element 51, the light adjusting element 30 may be in contact with either the second wavelength conversion element 42 or the first support element 51, or may be in contact with both the second wavelength conversion element 42 and the first support element 51.
[0112] In the Fig.In the light-emitting device 400 shown in Figure 15, the second wavelength conversion element 42 has a first surface 42a facing the first light-emitting layer 11 and a second surface 42b opposite the first surface 42a. The light adjustment element 30 is arranged on the second surface 42b of the second wavelength conversion element 42. The surface of the light adjustment element 30 on the side of the second wavelength conversion element 42 may be flat, as shown in Fig. 15, or have a wave-like shape. The thickness of the light adjusting element 30 may or may not be uniform. In particular, the thickness, as shown in a Fig.16, preferably toward the high luminance region 110. In the low luminance region 120, the luminance may be gradually increased toward the medium luminance region 130 and the high luminance region 110.
[0113] Since the thickness of the second wavelength conversion element 42 is reduced by the provision of the light adjusting element 30, the amount of material used to form the second wavelength conversion element 42 can be reduced. Method for manufacturing the light-emitting device 400
[0114] Since the light-emitting device 400 includes the light-adjusting element 30, the method for manufacturing the light-emitting device 400 includes a step of forming the light-adjusting element 30. The other steps are the same as the method for manufacturing the light-emitting device 100 according to the first embodiment.
[0115] The method for manufacturing the light-emitting device 400 will be described, highlighting the differences from the method for manufacturing the light-emitting device 100 according to the first embodiment.
[0116] The method for manufacturing the light-emitting device 400 includes a step of providing the light-emitting element 10, a step of providing a wavelength conversion element 40x ( Fig. 15) and a step of arranging the wavelength conversion element 40x on the light-emitting element 10.
[0117] The “wavelength conversion element 40x” used here includes the light-transmitting element 20, the first wavelength conversion element 41 and the light-adjusting element 30 provided on the first surface 20a of the light-transmitting element 20, and the second wavelength conversion element 42 covering the light-adjusting element 30. Step of providing the light-emitting element 10
[0118] This step corresponds to the “step of providing the light-emitting element 10” described in the method for manufacturing the light-emitting device 100 according to the first embodiment, and therefore, its description is omitted here. Step of providing the wavelength conversion element 40x
[0119] In the step of providing the wavelength conversion element 40x, first, the first wavelength conversion layer 4100 covering a part of the upper surface of the light-transmitting plate 2000 with a flat plate shape as shown in the Fig. 6A and Fig. 6B arranged on the translucent plate 2000. In Fig. 6B, however, the cross-sectional shape of the first wavelength conversion layer 4100 is rectangular, but in the case of providing the wavelength conversion element 40x, the first wavelength conversion layer 4100 is formed so that the cross-sectional shape is semi-elliptical using, for example, surface tension.
[0120] Then, the frame body 7000 surrounding the first wavelength conversion layer 4100 is mounted on the light-transmitting plate 2000 having a flat plate shape as shown in the Fig. 7A and Fig.7B. The frame body 7000 may be formed before the formation of the first wavelength conversion layer 4100, or the formation of the frame body 7000 may be omitted.
[0121] Then, a light adjusting element layer covering the surface of the light-transmitting plate 2000 protruding from the first wavelength conversion layer 4100 is disposed on the light-transmitting plate 2000 within the frame body 7000. At this time, the thickness of the light adjusting element layer is made smaller than the thickness of the first wavelength conversion layer 4100.
[0122] Finally, the second wavelength conversion layer 4200 is deposited, covering the light-adjusting element layer. The thickness of the second wavelength conversion layer 4200 is set such that the total thickness of the light-adjusting element layer and the second wavelength conversion layer 4200 is substantially equal to the thickness of the first wavelength conversion layer 4100. In this way, a central portion of the wavelength conversion element 40x is provided.
[0123] Then, as in the Fig. 9A and Fig.9B, the center portion of the wavelength conversion element 40x is divided at desired positions to obtain the wavelength conversion elements 40x. The light-transmitting plate 2000, the first wavelength conversion layer 4100, the second wavelength conversion layer 4200, and the light-adjusting element layer before the division become the light-transmitting element 20, the first wavelength conversion element 41, the second wavelength conversion element 42, and the light-adjusting element 30, respectively, after the division.
[0124] Above, an example was described in which the first wavelength conversion layer 4100 is formed and then the light adjusting element layer and the second wavelength conversion layer 4200 are formed, but the first wavelength conversion layer 4100 may also be formed after the light adjusting element layer and the second wavelength conversion layer 4200 are formed.
[0125] Regarding the arrangement order of the light adjusting element layer and the second wavelength conversion layer 4200, an example in which the light adjusting element layer is constructed first and then the second wavelength conversion layer 4200 covering the light adjusting element layer is constructed has been described above, but the light adjusting element layer covering the second wavelength conversion layer 4200 may be constructed after the second wavelength conversion layer 4200 is constructed.
[0126] Although the method of simultaneously providing a plurality of wavelength conversion elements 40x by dividing the central part of the wavelength conversion element 40x was described above, the wavelength conversion elements 40x may be provided individually. That is, the step of providing the wavelength conversion element 40x may include a step of arranging on the light-transmitting member 20 with the first wavelength conversion element 41 covering a part of the first surface 20a of the light-transmitting member 20, a step of arranging the light-adjusting element 30 covering the light-transmitting member 20 exposed from the first wavelength conversion element 41, and a step of arranging the second wavelength conversion element 42 covering the light-adjusting element 30.Alternatively, the wavelength conversion element 40x may be provided, for example, by purchasing an already manufactured wavelength conversion element 40x. Step of arranging the wavelength conversion element 40x on the light-emitting element 10
[0127] This step corresponds to the step of “arranging the wavelength conversion element 40 on the light-emitting element 10” in the manufacturing method of the light-emitting device 100 according to the first embodiment, except that the wavelength conversion element 40 is replaced by the wavelength conversion element 40x, so its description is omitted here. Fourth embodiment
[0128] A light-emitting device 500 according to a fourth embodiment shown in Fig.17 differs from the light-emitting device 100 according to the first embodiment in that light-emitting layers having different emission peak wavelengths are arranged in the high luminance region 110 and the low luminance region 120.
[0129] The first light-emitting layer 11 has an emission peak in a wavelength range of 400 nm to 500 nm, and the second light-emitting layer 12 has an emission peak at a wavelength longer than that of the emission peak of the first light-emitting layer 11. Viewed from the side S of the light-emitting surface of the light-emitting device 500, the first light-emitting layer 11 and the first wavelength conversion element 41 are arranged in the first region 110, and the second light-emitting layer 12 and the second wavelength conversion element 42 are arranged in the second region 120. The first wavelength conversion element 41 is arranged on the light-exit surface 11a of the first light-emitting layer 11 and converts a wavelength of a portion of the light emitted from the first light-emitting layer 11.The second wavelength conversion element 42 is arranged on the light exit surface 12a of the second light-emitting layer 12 and converts a wavelength of a part of the light emitted from the second light-emitting layer 12.
[0130] As in Fig. 18, the light from the second light-emitting layer 12 has a higher scotopic relative luminous efficiency than the light from the first light-emitting layer 11 because the emission peak wavelength of the second light-emitting layer 12 is shorter than the emission peak wavelength of the first light-emitting layer 11. Accordingly, it is possible to form the light-emitting device 500 in which both the photopic relative luminous efficiency of the light from the high luminance region 110 and the scotopic relative luminous efficiency of the light from the low luminance region 120 are high.
[0131] Since the light from the second light-emitting layer 12 has a high scotopic relative luminous efficiency, it is possible to form the light-emitting device 500 in which both the photopic relative luminous efficiency of the light from the high luminance region 110 and the scotopic relative luminous efficiency of the light from the low luminance region 120 are high even if the second wave conversion element 42 is omitted.
[0132] As in Fig. 17, the first support member 51 may be arranged on the light exit surface 11a of the first light-emitting layer 11 located in the high luminance region 110, and the second support member 52 may be arranged on the light exit surface 12a of the second light-emitting layer 12 located in the low luminance region 120.
[0133] Since the first light-emitting layer 11 and the second light-emitting layer 12 have different emission peak wavelengths, it is advantageous to use different support elements for the first light-emitting layer 11 and the second light-emitting layer 12. Details of the elements
[0134] The elements included in the light-emitting device according to the first to fourth embodiments will be described in detail below. First light-emitting layer 11 and second light-emitting layer 12
[0135] The first light-emitting layer 11 and the second light-emitting layer 12 may be formed as semiconductor layer bodies. In the semiconductor layer bodies, for example, a plurality of semiconductor layers (a first semiconductor layer, a light-emitting semiconductor layer, and a second semiconductor layer) are layered on the surfaces of the first support member 51 and the second support member 52. A buffer layer may or may not be disposed between the first support member 51 and the first light-emitting layer 11, and between the second support member 52 and the first light-emitting layer 11.
[0136] As the first light-emitting layer 11, a layer can be selected that emits light with an emission peak wavelength in a wavelength range of 400 nm to 500 nm. The first light-emitting layer 11 can be, for example, a semiconductor layer body that emits blue light (e.g., light with an emission peak wavelength in a range of 430 nm to 500 nm).
[0137] As the second light-emitting layer 12, a layer can be selected that emits light with an emission peak at a wavelength longer than the emission peak of the first light-emitting layer 11. The second light-emitting layer 12 can be, for example, a semiconductor layered body that emits blue light (e.g., light with an emission peak wavelength in the range of 430 nm to 500 nm) or green light (e.g., light with an emission peak wavelength in the range of 500 nm to 570 nm).
[0138] As a semiconductor layer body, a semiconductor layer body made of a nitride-based semiconductor (In X Al Y Ga 1-X-Y N, 0≤X, 0≤Y, X+Y≤1), GaP, or the like may be used. In addition to the nitride-based semiconductor elements, GaAlAs, AlInGaP, or the like may be used for a semiconductor layer body of one or both of the first light-emitting layer 11 and the second light-emitting layer 12, which emit red light (having a wavelength in a range of, for example, 610 nm to 700 nm). AlGaN or the like may be used as a buffer layer.
[0139] In the light-emitting device 100, when the emission intensity of the first light-emitting layer 11 located in the high-luminance region 110 is 1 at the time of light emission, the emission intensity of the light-emitting layer (either the first light-emitting layer 11 or the second light-emitting layer 12) in the low-luminance region 120 may be greater than or equal to 0.05 and less than or equal to 0.8, preferably greater than or equal to 0.1 and less than or equal to 0.7. By controlling the light emission intensities of the first light-emitting layer 11 and the second light-emitting layer 12 in this way, the luminance of the light from the high-luminance region 110 and the low-luminance region 120 can be controlled within an appropriate range. Wavelength conversion elements 40, 40x
[0140] The wavelength conversion element 40 used in the light-emitting device according to the first, second, and fourth embodiments includes the light-transmitting element 20, the first wavelength conversion element 41, and the second wavelength conversion element 42 provided on the first surface 20a of the light-transmitting element 20.
[0141] The wavelength conversion element 40x used in the light-emitting device according to the third embodiment includes the light-transmitting element 20, the first wavelength conversion element 41 and the light-adjusting element 30 provided on the first surface 20a of the light-transmitting element 20, and the second wavelength conversion element 42 covering the light-adjusting element 30.
[0142] The first wavelength conversion element 41, the second wavelength conversion element 42, the light-transmitting element 20 and the light-adjusting element 30 are described in more detail below. First wavelength conversion element 41 and second wavelength conversion element 42
[0143] The first wavelength conversion element 41 converts the wavelength of at least a portion of the light from the first light-emitting layer 11 to a different wavelength. The second wavelength conversion element 42 converts the wavelength of at least a portion of the light from the first light-emitting layer 11 or the second light-emitting layer 12 to a different wavelength. The first wavelength conversion element 41 and the second wavelength conversion element 42 contain phosphors that absorb light with a specific emission peak wavelength and convert the light into light with a different emission peak wavelength.
[0144] As the first wavelength conversion element 41 and the second wavelength conversion element 42, an element obtained by mixing and molding a phosphor and a light-transmitting material can be used. For the light-transmitting material, an organic resin such as an epoxy resin, a silicone resin, a phenolic resin, or a polyimide resin, as well as an inorganic material such as glass or ceramic, can be used.
[0145] As the phosphor used in the first wavelength conversion element 41, a phosphor that can be excited by the emitted light from the first light-emitting layer 11 is used. As the phosphor for the second wavelength conversion element 42, in the first to third embodiments, a phosphor that can be excited by the emitted light from the first light-emitting layer 11 is used, and in the fourth embodiment, a phosphor that can be excited by the emitted light from the second light-emitting layer 12 is used.
[0146] Examples of phosphors that can be used for the first wavelength conversion element 41 and the second wavelength conversion element 42 are listed below. The phosphors used in the wavelength conversion elements 41 and 42 are selected so that the peak wavelength of the light whose wavelength is converted by the first wavelength conversion element 41 is longer than the peak wavelength of the light whose wavelength is converted by the second wavelength conversion element 42.
[0147] Examples of a phosphor that emits green light include an yttrium aluminum garnet-based phosphor (for example, Y3(Al,Ga)5O 12 :Ce), a lutetium-aluminium-garnet-based phosphor (for example Lu3(Al,Ga)5O 12 :Ce), a terbium-aluminium-garnet-based phosphor (e.g. Tb3(Al,Ga)5O 12:Ce), a silicate-based phosphor (e.g. (Ba,Sr)2SiO4:Eu), a chlorosilicate-based phosphor (e.g. Ca8Mg(SiO4)4Cu2:Eu), a β-sialon-based phosphor (e.g. Si 6-z Al z O z N 8-z :Eu (0 < z < 4.2)) and an SGS-based phosphor (e.g. SrGa2S4:Eu).
[0148] Examples of a phosphor that emits yellow light include an α-sialon-based phosphor (e.g., M z (Si,Al) 12 (O,N) 16(where 0 < z ≤ 2 and M is Li, Mg, Ca, Y, and a lanthanide element other than La and Ce). In addition, the above-mentioned phosphors that emit green light include a phosphor that emits yellow light. For example, when Y in the yttrium aluminum garnet-based phosphor is partially substituted with Gd, an emission peak wavelength can be shifted to a long-wavelength side, whereby the yttrium aluminum garnet-based phosphor can emit yellow light. The above-mentioned phosphors include a phosphor that can emit orange light.
[0149] Examples of a phosphor that emits red light include a nitrogen-containing calcium aluminum silicate (CASN or SCASN)-based phosphor (e.g., (Sr,Ca)AlSiN3:Eu) and a BSESN-based phosphor (e.g., (Ba,Sr,Ca)2Si5N8:Eu). Other examples include a manganese-activated fluoride-based phosphor (a phosphor represented by the general formula (I) A2[M 1-a Mn a F6] (wherein in the general formula (I), A is at least one element selected from the group consisting of K, Li, Na, Rb, Cs, and NH4, M is at least one element selected from the group consisting of Group 4 elements and Group 14 elements, and a satisfies the condition 0 < a < 0.2). Examples of manganese-activated fluoride-based phosphors include a KSF-based phosphor (e.g., K2SiF6: Mn), a KSAF-based phosphor (e.g., K2Si 0,99 Al 0,01 F 5,99: Mn) and an MGF-based phosphor (e.g. 3.5MgO 0.5MgF2 GeO2: Mn).
[0150] For example, an yttrium aluminum garnet-based phosphor (e.g. (Y,Gd)3Al5O 12 :Ce), in which Y is partially substituted by Gd, is preferably used as a yellow-emitting phosphor capable of emitting white mixed light in combination with a blue-emitting element. In the light-emitting device 100 capable of emitting white light, the types and concentrations of the phosphors contained in the first wavelength conversion element 41 and the second wavelength conversion element 42 are adjusted so that white light can be emitted at a desired color gradation.
[0151] The types, particle sizes, and concentrations of the phosphors contained in the first wavelength conversion element 41 and the second wavelength conversion element 42 are determined by considering the wavelength conversion efficiencies, emission wavelengths, and the like of the phosphors to be excited by the emitted light from the first light-emitting layer 11 and the second light-emitting layer 12. The phosphor concentration of the first wavelength conversion element 41 and the second wavelength conversion element 42 is preferably, for example, 50 mass percent or more and 60 mass percent or less. The phosphor concentration indicates the ratio of the phosphor in the first wavelength conversion element 41 or the second wavelength conversion element 42 containing the phosphor. Translucent element 20
[0152] Examples of the light-transmitting member 20 include those obtained by molding a light-transmitting material such as a resin, glass, or an inorganic substance into a plate shape. The light-transmitting member 20 has an area, in plan view, that matches the total area of the first wavelength conversion element 41 and the second wavelength conversion element 42. Examples of the glass are borosilicate glass and quartz glass, and examples of the resin are a silicone resin and an epoxy resin. Among them, glass is preferably used for the light-transmitting member 20, considering light resistance, mechanical strength, and the like.
[0153] The light-transmitting member 20 is a component for holding the first wavelength conversion element 41 and the second wavelength conversion element 42 in the wavelength conversion element 40. The first wavelength conversion element 41 and the second wavelength conversion element 42 are arranged on the surface of the light-transmitting member 20, which is made of, for example, a glass plate, by printing or the like. With such a structure, the first wavelength conversion element 41 and the second wavelength conversion element 42 can be thinner.Thereby, the optical path length of the light passing through the first wavelength conversion element 41 and the second wavelength conversion element 42 is shortened and the attenuation of the light passing through the first wavelength conversion element 41 and the second wavelength conversion element 42 is suppressed, so that a light-emitting device with higher luminance can be obtained.
[0154] The thickness of the light-transmitting member 20 may be, for example, 30 µm or more and 300 µm or less, preferably 60 µm or more and 200 µm or less, taking into account the downsizing of the light-emitting device, the mechanical strength of the first wavelength conversion element 41 and the second wavelength conversion element 42, and the like.
[0155] The translucent element 20 may contain a light-diffusing element. The light-diffusing element contained in the translucent element 20 can reduce color irregularities and luminance irregularities. Examples of the light-diffusing element include titanium oxide, barium titanate, aluminum oxide, and silicon oxide. Light adjustment element 30
[0156] As the light adjusting element 30, a light-reflecting material, a light-transmitting material with a low refractive index, a distributed Bragg reflector (DBR), a wavelength filter, or the like can be used.
[0157] As the light-reflecting material, a material obtained by mixing and molding a resin and a light-reflecting substance can be used. Examples of the resin include a plastic containing at least one of a silicone resin, a modified silicone resin, an epoxy resin, a modified epoxy resin, an acrylic resin, a phenolic resin, a bismaleimide triazine resin, and a polyphthalamide resin, and a hybrid resin thereof. Among these materials, it is preferable to use a resin containing a silicone resin as a base polymer, which has good heat resistance and electrical insulation properties and is flexible. Examples of light-reflecting substances include titanium oxide, silicon oxide, zirconium oxide, magnesium oxide, calcium carbonate, calcium hydroxide, calcium silicate, zinc oxide, barium titanate, potassium titanate, aluminum oxide, aluminum nitride, boron nitride, and mullite, as well as combinations thereof.Among these materials, titanium oxide is preferable because it is relatively stable to moisture or the like and has a high refractive index. Light-conducting element 60
[0158] For example, a translucent plastic can be used as the light-conducting element 60. For example, an organic resin such as an epoxy resin, a silicone resin, a phenolic resin, or a polyimide resin can be used as the light-conducting resin. In particular, a silicone resin with high heat resistance is preferably used. Furthermore, the above-described light-diffusing element may or may not be included. First support element 51 and second support element 52
[0159] Examples of the first support member 51 and the second support member 52 include an insulating substrate made of sapphire or spinel (MgAl2O4) and a nitride-based semiconductor substrate made of InN, AlN, GaN, InGaN, AlGaN, or InGaAlN. To extract emitted light from the first light-emitting layer 11 through the first support member 51, the first support member 51 is preferably formed of a light-transmitting material. ExamplesFirst example
[0160] The Fig. The light-emitting device 100 shown in Figure 3 was manufactured. Table 1 shows the emission peak wavelength of the light-emitting layer used and the types of phosphors included in the first wavelength conversion element 41 and the second wavelength conversion element 42.
[0161] In each of the high-luminance region 110 and the low-luminance region 120, a first light-emitting layer 11 with the same dimension as viewed from the light-emitting surface S (the light-exit surface 11a region) was disposed. The low-luminance region 120 was masked, and the emission spectrum (first emission spectrum) of the light emitted from the high-luminance region 110 was measured. Subsequently, the high-luminance region 110 was masked, and an emission spectrum (second emission spectrum) of the light emitted from the low-luminance region 120 was measured. Fig. 2 shows a first emission spectrum and a second emission spectrum of the light-emitting device 100 according to the first example.
[0162] Regarding the maximum intensity Ia max In a wavelength range from 400 nm to 500 nm of the first emission spectrum, the relative intensities Ia507 and Ia 555 at a wavelength of 507 nm and a wavelength of 555 nm of the first emission spectrum and the relative intensities Ib 507 and Ib 555 at a wavelength of 507 nm and a wavelength of 555 nm of the second emission spectrum and presented in Table 1. Table 1 LOW LUMINANCE REGION 120 HIGH LUMINANCE REGION 110 LIGHT-EMITTING LAYER TYPE FIRST LIGHT-EMITTING LAYER 11 FIRST LIGHT-EMITTING LAYER 11 EMISSION PEAK WAVELENGTH 450 nm 450 nm Wavelength conversion element SECOND WAVELENGTH CONVERSION ELEMENT 42 FIRST WAVELENGTH CONVERSION ELEMENT 41 PHONOLUBRICANT CONTAINED IN THE WAVELENGTH CONVERSION ELEMENT EMISSION PEAK WAVELENGTH OF THE YELLOW PHONOMAH G-YAG / G-LAG 520 nm YAG550 nm EMISSION PEAK WAVELENGTH OF THE RED PHONOMAH BSESN / SCASN610 nm - RELATIVE INTENSITY 507 nm 0,369 0,272 555 nm 0,435 0,580 Second example
[0163] The Fig. The light-emitting device 500 shown in Figure 17 was manufactured. Table 2 shows the emission peak wavelengths of the light-emitting layers used and the types of phosphors included in the first wavelength conversion element 41 and the second wavelength conversion element 42.
[0164] Note that the first light-emitting layer 11 was disposed in the high-luminance region 110, and the second light-emitting layer 12 was disposed in the low-luminance region 120. The first light-emitting layer 11 and the second light-emitting layer 12 had the same dimensions as viewed from the light-emitting surface S (the surfaces of the light-exit surfaces 11a and 12a).
[0165] As in the first example, the first emission spectrum and the second emission spectrum were measured. Fig. 18 shows the first emission spectrum and the second emission spectrum of the light-emitting device 500 according to a second example.
[0166] Regarding the maximum intensity Ia max In a wavelength range from 400 nm to 500 nm of the first emission spectrum, the relative intensities Ia 507 and Ia 555at a wavelength of 507 nm and a wavelength of 555 nm of the first emission spectrum and the relative intensities Ib 507 and Ib 555 at a wavelength of 507 nm and a wavelength of 555 nm of the second emission spectrum and shown in Table 2.
[0118] Table 2 PHOSPHORUS IN WAVELENGTH CONVERSION ELEMENT LOW LUMINANCE REGION 120 HIGH LUMINANCE REGION 110 LIGHT-EMITTING LAYER TYPE SECOND LIGHT-EMITTING LAYER 12 FIRST LIGHT-EMITTING LAYER 11 EMISSION PEAK WAVELENGTH 490 nm 450 nm Wavelength conversion element SECOND WAVELENGTH CONVERSION ELEMENT 42 FIRST WAVELENGTH CONVERSION ELEMENT 41 PHONOLUBRICANT CONTAINED IN THE WAVELENGTH CONVERSION ELEMENT EMISSION PEAK WAVELENGTH OF THE YELLOW PHONOMAH YAG550 nm YAG550 nm EMISSION PEAK WAVELENGTH OF THE RED PHONOMAH BSESN / SCASN610 nm - RELATIVE INTENSITY 507 nm 0,461 0,272 555 nm 0,058 0,580
[0167] The light-emitting device according to embodiments of the present disclosure has the following aspects. [Aspect 1] A light-emitting device comprising: a first region and a second region configured to emit light having different luminances when the light-emitting device is turned on, wherein the luminance La of the first area is higher than the luminance Lb of the second area, an emission spectrum of a light emitted from the first region a maximum intensity Ia max in a wavelength range from 400 nm to 500 nm, an intensity Ia 507 at a wavelength of 507 nm and an intensity Ia 555 at a wavelength of 555 nm, an emission spectrum of a light emitted by the second region an intensity Ib 507 at a wavelength of 507 nm and an intensity Ib 555 at a wavelength of 555 nm, and relative intensities Ira 507 , Ira 555 , Irb 507 and Irb 555 can be obtained by measuring the intensities Ia 507 , Ia 555 , Ib 507 and Ib 555 each by the maximum intensity Ia max , be divided, where the relative intensity Ira 507 emitted light is less than the relative intensity Irb507 , and the relative intensity Ira 555 is higher than the relative intensity Irb 555 . [Aspect 2] The light-emitting device according to aspect 1, comprising: a first light-emitting layer having an emission peak in a wavelength range of 400 nm to 500 nm; and at least two wavelength conversion elements arranged on a light-exit surface side of the first light-emitting layer and configured to convert a wavelength of light emitted from the first light-emitting layer, wherein, viewed from a light-emitting surface side of the light-emitting device, a first wavelength conversion element is arranged in the first region and a second wavelength conversion element is arranged in the second region, and a peak wavelength of the light whose wavelength is converted by the first wavelength conversion element is longer than a peak wavelength of the light whose wavelength is converted by the second wavelength conversion element. [Aspect 3] The light-emitting device according to aspect 2, comprising a plurality of the first light-emitting layers, wherein at least one of the first light-emitting layers is arranged in each of the first region and the second region as viewed from the light-emitting surface of the light-emitting device. [Aspect 4] The light-emitting device according to aspect 3, wherein a density of a current applied to one of the first light-emitting layers arranged in the first region is higher than a density of a current applied to one of the first light-emitting layers arranged in the second region. [Aspect 5] The light-emitting device according to any one of aspects 2 to 4, further comprising a light adjusting element configured to adjust the luminance of the light emitted from the second region, wherein the light adjusting element is arranged on the light-exit surface side of the first light-emitting layer and is arranged over the entire second region as viewed from the light-emitting surface side of the light-emitting device. [Aspect 6] The light-emitting device according to aspect 5, wherein the second wavelength conversion element has a first surface facing the first light-emitting layer and a second surface opposite the first surface, and the light adjusting element is arranged on one side of the second surface of the second wavelength conversion element. [Aspect 7] The light-emitting device according to any one of aspects 1 to 6, further comprising a third region between the first region and the second region as viewed from the light-emitting surface of the light-emitting device, the third region having a luminance Lc equal to or higher than the luminance Lb and equal to or lower than the luminance La. [Aspect 8] The light-emitting device according to any one of aspects 2 to 6, further comprising a third region between the first region and the second region as viewed from the light-emitting surface of the light-emitting device, further comprising a third region between the first region and the second region as viewed from the light-emitting surface of the light-emitting device, wherein the third region has a luminance Lc equal to or greater than the luminance Lb and equal to or less than the luminance La, and a part of the first wavelength conversion element and a part of the second wavelength conversion element are located in the third region as viewed from the light-emitting surface of the light-emitting device. [Aspect 9] The light-emitting device according to aspect 1, comprising: a first light-emitting layer having an emission peak in a wavelength range of 400 nm to 500 nm; a second light-emitting layer having an emission peak at a wavelength longer than a wavelength of an emission peak of the first light-emitting layer; and a first wavelength conversion element arranged on a light exit surface side of the first light-emitting layer and configured to convert a wavelength of light emitted from the first light-emitting layer, wherein, viewed from a light-emitting surface side of the light-emitting device, the first light-emitting layer and the first wavelength conversion element are arranged in the first region, and the second light-emitting layer is arranged in the second region. [Aspect 10] The light-emitting device according to aspect 9, further comprising a second wavelength conversion element arranged on a light-exit surface side of the second light-emitting layer and configured to convert a wavelength of light emitted from the second light-emitting layer. [Aspect 11] The light-emitting device according to any one of aspects 2 to 6 or 8, further comprising a light-transmitting member disposed on the light-exit surface side of the first light-emitting layer, wherein the first wavelength conversion element and the second wavelength conversion element are disposed between the first light-emitting layer and the light-transmitting member. [Aspect 12] The light-emitting device according to aspect 9 or 10, further comprising a light-transmitting member disposed on the light-exit surface side of the first light-emitting layer, wherein the first wavelength conversion element is disposed between the first light-emitting layer and the light-transmitting member. Industrial applicability
[0168] The light-emitting device according to the embodiments of the present disclosure can be preferably used for vehicle lighting, for example, headlights. Furthermore, the light-emitting device according to the embodiments of the present disclosure can be used for the light source for a backlight of a liquid crystal display, various types of lighting fixtures, a large-scale display, various types of display devices for advertisements, destination information, and the like, and further, for example, for a digital video camera, image readers in a fax machine, a copying machine, a scanner, and the like, and a projection device.
[0169] This application claims priority to Japanese Patent Application No. 2022-210850 or JP 2022-210850 A, filed on Dec. 27, 2022, the entire contents of which are incorporated by reference. List of reference symbols 100, 200, 300, 301, 302, 303, 400, 401, 500 Light-emitting device 11 First light-emitting layer 11a Light exit surface 12 Second light-emitting layer 12a Light exit surface 16 Electrode 20 Translucent element 30 Light adjustment element 40, 40x wavelength conversion element 41 First wavelength conversion element 42 Second wavelength conversion element 51 First support element 52 Second support element 60 light guide element S Illuminated area 110 First area (high luminance area) 120 Second area (low luminance area) 130 Third area (area with medium luminance) QUOTES CONTAINED IN THE DESCRIPTION
[0000] This list of documents submitted by the applicant was generated automatically and is included solely for the convenience of the reader. This list is not part of the German patent or utility model application. The DPMA assumes no liability for any errors or omissions. Cited patent literature
[0000] JP 2017-011 259
[0003] JP 2022-210850
[0169] JP 2022-210850 A
[0169]
Claims
[1] Light-emitting device comprising: a first region and a second region configured to emit light having different luminances when the light-emitting device is turned on, wherein the luminance La of the first area is higher than the luminance Lb of the second area, an emission spectrum of a light emitted from the first region a maximum intensity Ia max in a wavelength range from 400 nm to 500 nm, an intensity Ia 507 at a wavelength of 507 nm and an intensity Ia 555 at a wavelength of 555 nm, an emission spectrum of a light emitted by the second region an intensity Ib 507 at a wavelength of 507 nm and an intensity Ib 555 at a wavelength of 555 nm, and relative intensities Ira 507 , Ira 555 , Irb 507 and Irb 555 can be obtained by measuring the intensities Ia 507 , Ia 555 , Ib 507 and Ib 555 each by the maximum intensity Ia max be divided, where the relative intensity Ira 507 is lower than the relative intensity Irb 507 and the relative intensity Ira 555 is higher than the relative intensity Irb 555 . [2] A light-emitting device according to claim 1, comprising: a first light-emitting layer having an emission peak in a wavelength range of 400 nm to 500 nm; and at least two wavelength conversion elements arranged on a light exit surface side of the first light-emitting layer and configured to convert a wavelength of the light emitted from the first light-emitting layer, wherein viewed from one side of a light-emitting surface of the light-emitting device a first wavelength conversion element is arranged in the first region and a second wavelength conversion element is arranged in the second region, and a peak wavelength of the light whose wavelength is converted by the first wavelength conversion element is longer than a peak wavelength of the light whose wavelength is converted by the second wavelength conversion element. [3] The light-emitting device according to claim 2, comprising a plurality of said first light-emitting layers, wherein viewed from the light-emitting surface of the light-emitting device, at least one of the first light-emitting layers is arranged in each of the first region and the second region. [4] The light-emitting device according to claim 3, wherein a density of a current applied to one of the first light-emitting layers arranged in the first region is higher than a density of a current applied to the one of the first light-emitting layers arranged in the second region. [5] The light-emitting device according to any one of claims 2 to 4, further comprising a light adjusting element configured to adjust the luminance of the light emitted from the second region, wherein the light adjusting element is arranged on the light-exit surface side of the first light-emitting layer and is arranged over the entire second region as viewed from the light-emitting surface side of the light-emitting device. [6] A light-emitting device according to claim 5, wherein the second wavelength conversion element has a first surface facing the first light-emitting layer and a second surface opposite the first surface, and the light adjusting element is arranged on one side of the second surface of the second wavelength conversion element. [7] The light-emitting device according to any one of claims 1 to 6, further comprising a third region between the first region and the second region as viewed from the light-emitting surface of the light-emitting device, the third region having a luminance Lc equal to or higher than the luminance Lb and equal to or lower than the luminance La. [8] The light-emitting device according to any one of claims 2 to 6, further comprising a third region between the first region and the second region as viewed from the light-emitting surface of the light-emitting device, wherein the third region has a luminance Lc that is equal to or greater than the luminance Lb and equal to or less than the luminance La, and a part of the first wavelength conversion element and a part of the second wavelength conversion element are located in the third region as viewed from the light-emitting surface of the light-emitting device. [9] A light-emitting device according to claim 1, comprising: a first light-emitting layer having an emission peak in a wavelength range of 400 nm to 500 nm; a second light-emitting layer having an emission peak at a wavelength longer than a wavelength of an emission peak of the first light-emitting layer; and a first wavelength conversion element arranged on a light exit surface side of the first light-emitting layer and configured to convert a wavelength of light emitted from the first light-emitting layer, wherein viewed from one side of a light-emitting surface of the light-emitting device the first light-emitting layer and the first wavelength conversion element are arranged in the first region and the second light-emitting layer is arranged in the second region. [10] The light-emitting device according to claim 9, further comprising a second wavelength conversion element arranged on a light-exit surface side of the second light-emitting layer and configured to convert a wavelength of light emitted from the second light-emitting layer. [11] Light-emitting device according to one of claims 2 to 6 or 8, further comprising a light-transmitting element arranged on the light-exit surface side of the first light-emitting layer, wherein the first wavelength conversion element and the second wavelength conversion element are arranged between the first light-emitting layer and the light-transmitting element. [12] The light-emitting device according to claim 9 or 10, further comprising a light-transmitting member disposed on the light-exit surface side of the first light-emitting layer, wherein the first wavelength conversion element is disposed between the first light-emitting layer and the light-transmitting member.
Citation Information
Patent Citations
JP2022-210850A
2017-011259
2022-210850