Preparation method of LED chip structure and LED chip structure

By periodically alternately implanting positive and negative ions into the semiconductor layer of the micron LED chip to form an insulating isolation region and forming a photonic crystal structure in the insulating isolation region, the leakage channel problem caused by sidewall defects of the micron LED chip is solved, and the chip density and vertical light output intensity are improved.

CN120091670AActive Publication Date: 2025-06-03SHANDONG YUNHAI GUOCHUANG CLOUD COMPUTING EQUIP IND INNOVATION CENT CO LTD
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Patent Information

Application Number
CN202510585582.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-08
Publication Date
2025-06-03
Estimated Expiration
2045-05-08

AI Technical Summary

Technical Problem

During the preparation process, a leakage channel is formed due to sidewall surface defects, which affects device performance and reduces internal quantum efficiency. Although existing methods can reduce leakage current, they are difficult to completely remove sidewall damage and increase the difficulty of growth process and process conditions.

Method used

By periodically alternately implanting positive ions and negative ions in the semiconductor layer, a plurality of insulating isolation regions are formed, and a photonic crystal structure is formed in the insulating isolation region to suppress the lateral diffusion of light.

Benefits of technology

The insulation effect of the insulating isolation region is improved, the isolation distance between micron LED chips is reduced, the chip density is improved, and the light output intensity of planar micron LEDs in the vertical direction is significantly improved.

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Abstract

The invention relates to the technical field of LED chips, in particular to a preparation method of an LED chip structure and the LED chip structure. The invention provides a preparation method of an LED chip structure and the LED chip structure, and the method comprises the steps: forming a semiconductor layer on a substrate; the first ions and the second ions are periodically and alternately injected into the semiconductor layer to form a plurality of insulating isolation regions in the semiconductor layer, and the plurality of insulating isolation regions divide the semiconductor layer into a plurality of LED unit structures; wherein the first ions are one of positive ions and negative ions, and the second ions are the other one of the positive ions and the negative ions; a photonic crystal structure is formed in the insulated isolation region to suppress lateral diffusion of light. According to the invention, the positive ions and the negative ions are periodically and alternately injected into the semiconductor layer, so that the plurality of insulating isolation regions are formed in the semiconductor layer, and the carrier trapping capability is enhanced by alternately injecting the positive ions and the negative ions, so that the insulating effect of the insulating isolation regions is further improved.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of LED chips, and particularly to a method for preparing an LED chip structure and an LED chip structure. Background Art

[0002] GaN-based LED devices usually use dry etching to form grooves for isolation. However, due to the small size of ultra-high-resolution MicroLED (micrometer LED), a large amount of GaN sidewalls are exposed during the etching of the mesa. The chip size of micrometer LEDs is usually less than 50 μm, and the chip pitch is small. Therefore, the surface area of the sidewalls exposed during the preparation of micrometer LEDs increases by an order of magnitude compared to conventional LEDs. These surfaces exposed on the sidewalls will form leakage channels due to defects during the operation of micrometer LEDs, affecting the performance of the devices, and thus reducing the internal quantum efficiency of micrometer LEDs.

[0003] Currently, the methods for solving the leakage channels formed by surface defects on the sidewalls mainly include sidewall passivation, wet chemical etching, thermal annealing, neutron damage-free etching, and selective area epitaxy, etc. These methods have effectively reduced the leakage current generated by surface damage. However, wet etching and thermal annealing cannot completely remove the sidewall damage, and sidewall passivation, neutron damage-free etching, and selective area epitaxy all increase the difficulty of the growth process, wafer processing, and dry etching conditions of micrometer LEDs. Therefore, how to solve the sidewall defect problem during the preparation of micrometer LEDs is one of the problems that those skilled in the art need to solve. Summary of the Invention

[0004] The present disclosure provides a method for preparing an LED chip structure and an LED chip structure to at least solve the above technical problems existing in the prior art.

[0005] According to a first aspect of the present disclosure, there is provided a method for preparing an LED chip structure, wherein the method includes: Providing a substrate; Forming a semiconductor layer on the substrate, the semiconductor layer including a first doped semiconductor layer, an active layer, and a second doped semiconductor layer stacked in sequence from bottom to top; Periodically and alternately injecting a first ion and a second ion into the semiconductor layer to form a plurality of insulating isolation regions in the semiconductor layer, the plurality of insulating isolation regions dividing the semiconductor layer into a plurality of LED unit structures; wherein, the first ion is one of a positive ion and a negative ion, and the second ion is the other of the positive ion and the negative ion; Forming a photonic crystal structure in the insulating isolation regions to inhibit the lateral diffusion of light.

[0006] In one implementable embodiment, within each injection cycle, the first ions and the second ions are both injected into the semiconductor layer multiple times alternately at a first angle, a second angle, and a third angle.

[0007] In one implementable embodiment, the range of the first angle is 30° - 45°, the range of the second angle is 50° - 65°, and the range of the third angle is 75° - 90°.

[0008] In one implementable embodiment, the positive ions include at least one of silicon ions, boron ions, phosphorus ions, arsenic ions, and magnesium ions; The negative ions include at least one of fluoride ions, hydrogen ions, and oxygen ions.

[0009] In one implementable embodiment, the insulating isolation region penetrates through the second doped semiconductor layer and the active layer and is located within the first doped semiconductor layer.

[0010] In one implementable embodiment, the periodic and alternating injection of the first ions and the second ions into the semiconductor layer includes: Forming a mask layer on the semiconductor layer; Performing a patterning process on the mask layer to form a plurality of injection region patterns on the mask layer, where the injection region patterns expose a part of the semiconductor layer; wherein, the injection region patterns are in a multi-sided sawtooth shape; Performing periodic and alternating injection of the first ions and the second ions on the exposed part of the semiconductor layer to form a plurality of insulating isolation regions.

[0011] In one implementable embodiment, the distance between the insulating isolation region and the injection region pattern is 1 - 3 μm.

[0012] In one implementable embodiment, forming a photonic crystal structure within the insulating isolation region includes: Etching the insulating isolation region to form a groove within the insulating isolation region; Forming a passivation layer covering the bottom and side walls of the groove; Forming a metal reflection layer covering the passivation layer; Forming a photonic crystal structure covering the metal reflection layer and filling the groove.

[0013] In one implementable embodiment, the method further includes: Before forming the semiconductor layer, forming a first insulating layer on the substrate, where the material of the first insulating layer includes AlN, AlGaN, or BN.

[0014] According to a second aspect of the present disclosure, there is provided an LED chip structure, where the LED chip structure includes: Substrate; A semiconductor layer located on the substrate, the semiconductor layer including a first doped semiconductor layer, an active layer, and a second doped semiconductor layer stacked in sequence from bottom to top; A plurality of insulating isolation regions located within the semiconductor layer, the insulating isolation regions including a first ion and a second ion, the plurality of insulating isolation regions dividing the semiconductor layer into a plurality of LED unit structures; wherein, the first ion is one of a positive ion and a negative ion, and the second ion is the other of the positive ion and the negative ion; A photonic crystal structure located within the insulating isolation region to inhibit lateral diffusion of light.

[0015] In an implementable embodiment, the positive ion includes at least one of silicon ion, boron ion, phosphorus ion, arsenic ion, and magnesium ion; The negative ion includes at least one of fluorine ion, hydrogen ion, and oxygen ion.

[0016] In an implementable embodiment, the insulating isolation region penetrates through the second doped semiconductor layer and the active layer and is located within the first doped semiconductor layer.

[0017] In an implementable embodiment, the LED chip structure further includes: A mask layer located on the semiconductor layer, a plurality of injection region patterns are formed on the mask layer, and the injection region patterns expose the insulating isolation regions; wherein, the injection region patterns are in a polygonal serrated shape.

[0018] In an implementable embodiment, the distance between the insulating isolation region and the injection region pattern is 1 - 3 μm.

[0019] In an implementable embodiment, the LED chip structure further includes: A groove located within the insulating isolation region; A passivation layer covering the bottom and side walls of the groove; A metal reflective layer covering the passivation layer; The photonic crystal structure covers the metal reflective layer and fills the groove.

[0020] In an implementable embodiment, the LED chip structure further includes: A first insulating layer, the first insulating layer is located between the substrate and the semiconductor layer, wherein, the material of the first insulating layer includes AlN, AlGaN, or BN.

[0021] The preparation method of the LED chip structure and the LED chip structure of the present disclosure form a plurality of insulating isolation regions in the semiconductor layer by performing periodic alternating implantation of positive ions and negative ions. Among them, the positive ions prevent carrier penetration while forming a low-mobility defect region, and the negative ions can create deep-level traps to cause carrier localization. The alternating implantation of positive and negative ions enhances the carrier capture ability, thereby further improving the insulation effect of the insulating isolation region. As a result, a good electrical isolation effect can be achieved through a smaller isolation region. In this way, the isolation distance between micron LED chips can be greatly reduced, the chip density can be increased, and good electrical insulation can be formed between high-density micron LED chips.

[0022] At the same time, a photonic crystal structure is formed in the insulating isolation region to match the emission wavelength of the active layer with the photonic bandgap of the photonic crystal, restricting the lateral propagation of photons in the quantum wells of the active layer, thereby significantly improving the light extraction intensity of the planar micron LED in the vertical direction.

[0023] It should be understood that the content described in this part is not intended to identify the key or important features of the embodiments of the present disclosure, nor is it used to limit the scope of the present disclosure. Other features of the present disclosure will become easily understood through the following description. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] By referring to the accompanying drawings and reading the following detailed description, the above and other objects, features, and advantages of the exemplary embodiments of the present disclosure will become easily understood. In the drawings, several embodiments of the present disclosure are shown in an exemplary rather than restrictive manner, where: In the drawings, the same or corresponding reference numerals represent the same or corresponding parts.

[0025] Figure 1 is a flowchart of the preparation method of the LED chip structure provided by the embodiment of the present disclosure; Figure 2 shows the implementation process schematic of the preparation method of the LED chip structure provided by the embodiment of the present disclosure Figure 1 ; Figure 3 shows the implementation process schematic of the preparation method of the LED chip structure provided by the embodiment of the present disclosure Figure 2 ; Figure 4 shows the implementation process schematic of the preparation method of the LED chip structure provided by the embodiment of the present disclosure Figure 3 ; Figure 5 shows the implementation process schematic of the preparation method of the LED chip structure provided by the embodiment of the present disclosure Figure 4 ; Figure 6Shows the implementation process schematic of the preparation method of the LED chip structure provided by the embodiments of the present disclosure Figure 5 ; Figure 7 Shows the implementation process schematic of the preparation method of the LED chip structure provided by the embodiments of the present disclosure Figure 6 ; Figure 8 Shows the implementation process schematic of the preparation method of the LED chip structure provided by the embodiments of the present disclosure Figure 7 ; Figure 9 Is a top view of the mask layer in the embodiments of the present disclosure; Figure 10 Is a structural schematic diagram of the LED chip structure provided by the embodiments of the present disclosure.

[0026] Reference numerals: 10. Substrate; 20. Second insulating layer; 30. First insulating layer; 40. Semiconductor layer; 41. First doped semiconductor layer; 42. Active layer; 43. Second doped semiconductor layer; 400. LED unit structure; 50. Mask layer; 501. Injection area pattern; 60. Insulating isolation area; 601. Groove; 71. Passivation layer; 72. Metal reflection layer; 80. Photonic crystal structure; 91. First electrode; 92. Second electrode; 93. Microlens. Detailed implementation manners

[0027] To make the objectives, features, and advantages of the present disclosure more obvious and understandable, the technical solutions in the embodiments of the present disclosure will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present disclosure. Obviously, the described embodiments are only a part of the embodiments of the present disclosure, rather than all the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present disclosure without creative efforts belong to the scope of protection of the present disclosure.

[0028] The embodiments of the present disclosure provide a method for preparing an LED chip structure, Figure 1 Is a flowchart of the method for preparing the LED chip structure provided by the embodiments of the present disclosure, as Figure 1 shown, the method includes: Step 101: Provide a substrate; Step 102: Form a semiconductor layer on the substrate, the semiconductor layer includes a first doped semiconductor layer, an active layer, and a second doped semiconductor layer stacked in sequence from bottom to top; Step 103: Inject the first ions and the second ions into the semiconductor layer in a periodic and alternating manner to form a plurality of insulating isolation regions within the semiconductor layer, and the plurality of insulating isolation regions divide the semiconductor layer into a plurality of LED unit structures; wherein, the first ion is one of a positive ion and a negative ion, and the second ion is the other of the positive ion and the negative ion; Step 104: Form a photonic crystal structure within the insulating isolation region to inhibit the lateral diffusion of light.

[0029] The following further elaborates on the preparation method of the LED chip structure provided by the embodiments of the present disclosure with reference to specific embodiments. Figures 2 to 8 It is a schematic flowchart of the implementation process of the preparation method of the LED chip structure provided by the embodiments of the present disclosure.

[0030] First, refer to Figure 2 , and execute Step 101 to provide a substrate 10.

[0031] In one embodiment, the substrate 10 can be a single-element semiconductor material substrate (such as a silicon substrate, a germanium substrate, etc.), a compound semiconductor material substrate (such as a germanium-silicon substrate, etc.), or a silicon-on-insulator (SOI) substrate, a germanium-on-insulator (GOI) substrate, or a sapphire substrate, etc. In a preferred embodiment, the substrate 10 can be a sapphire substrate.

[0032] The epitaxial wafer of the embodiments of the present disclosure adopts a full-structure blue LED epitaxial wafer with a light-emitting wavelength of about 450 nm. Since this full-structure epitaxial wafer is used for the preparation of micro-LEDs and it is necessary to ensure uniform light-emitting wavelength, and its wavelength drift should be less than 1 nm. Therefore, it is necessary to first measure the light-emitting wavelength position, internal quantum efficiency, wavelength uniformity, and light-emitting efficiency of the epitaxial wafer through room-temperature photoluminescence (PL), low-temperature photoluminescence, PL mapping (photoluminescence scanning system), and chemiluminescence (CL) spectra to observe whether the epitaxial wafer meets the LED requirements.

[0033] Then, continue to refer to Figure 2 , and the method further includes: forming a second insulating layer 20 on the substrate 10.

[0034] In actual operation, the second insulating layer 20 can be formed by chemical vapor deposition (CVD), physical vapor deposition (PVD), atomic layer deposition (ALD), or other deposition methods.

[0035] In a preferred embodiment, the second insulating layer 20 can be deposited by atomic layer deposition technology.

[0036] The material of the second insulating layer 20 includes but is not limited to silicon dioxide (SiO 2 ), silicon nitride (SiN x ), and aluminum oxide (Al 2 O 3 ).

[0037] The role of these materials in the LED chip structure is to provide effective isolation and protection, improving the performance and reliability of the chip. By selecting appropriate insulating layer materials, the electrical performance and thermal stability of the LED chip can be improved.

[0038] When selecting insulating layer materials, one or a combination of silicon dioxide, silicon nitride, or aluminum oxide can be selected according to specific application requirements. Silicon dioxide has good electrical insulation performance and thermal stability and is suitable for applications in high-temperature environments; silicon nitride has a low dielectric constant and can be used as an ideal isolation layer in microwave and radio frequency applications to achieve electrical isolation between devices and reduce noise interference; aluminum oxide has excellent mechanical strength and corrosion resistance and is suitable for applications requiring high strength and durability. In addition, the performance of the insulating layer material can be optimized by adjusting the proportions of silicon dioxide, silicon nitride, and aluminum oxide to meet the requirements of different application scenarios.

[0039] Next, continue to refer to Figure 2 , the method further includes: before forming the semiconductor layer, forming a first insulating layer 30 on the substrate 10, where the material of the first insulating layer 30 includes AlN (aluminum nitride), AlGaN (aluminum gallium nitride), or BN (boron nitride). However, it should be explained that the material of the first insulating layer 30 is not limited to this.

[0040] Specifically, the first insulating layer 30 is located on the second insulating layer 20. The thickness range of the first insulating layer 30 is 10 - 30 nm.

[0041] In actual operation, the first insulating layer 30 can be formed by Metal-organic Chemical Vapor Deposition (MOCVD), Molecular Beam Epitaxy (MBE), magnetron sputtering, Atomic Vapor Deposition (ALD), Chemical Vapor Deposition (CVD), or other deposition methods.

[0042] In a preferred embodiment, the first insulating layer 30 can be deposited and formed by atomic layer deposition technology or low-temperature sputtering method.

[0043] The first insulating layer 30 not only enhances the carrier blocking ability but also prevents the asymmetric diffusion of the implanted ions in the lateral direction, enhancing the insulation effect of the subsequently formed insulating isolation region.

[0044] Next, continue to refer to Figure 2 , perform step 102 to form a semiconductor layer 40 on the substrate 10. The semiconductor layer 40 includes a first doped semiconductor layer 41, an active layer 42, and a second doped semiconductor layer 43 that are stacked in sequence from bottom to top.

[0045] In actual operation, the first doped semiconductor layer 41, the active layer 42, and the second doped semiconductor layer 43 can be formed by Chemical Vapor Deposition (CVD), Physical Vapor Deposition (PVD), Atomic Vapor Deposition (ALD), or other deposition methods.

[0046] The first doped semiconductor layer 41 can be an n-type semiconductor layer, and the second doped semiconductor layer 43 can be a p-type semiconductor layer. More specifically, the first doped semiconductor layer 41 can be an n-type GaN layer, and the second doped semiconductor layer 43 can be a p-type GaN layer.

[0047] The active layer 42 is the key part for the LED chip structure to emit light, responsible for generating light, and is composed of periodically arranged In x Ga 1-x N quantum well layers and GaN quantum barrier layers. The thickness of the In x Ga 1-x N quantum well layer is 1.5 - 3.5 nm, and the thickness of the GaN quantum barrier layer is 9 - 15 nm. In x Ga 1-xThe number of periods of the N quantum wells and GaN quantum barriers is 3 to 7.

[0048] Next, referring to Figure 3 , a mask layer 50 is formed on the semiconductor layer 40.

[0049] In actual operation, the mask layer 50 can be formed by chemical vapor deposition (CVD), physical vapor deposition (PVD), atomic layer deposition (ALD), or other deposition methods.

[0050] In a preferred embodiment, the mask layer 50 can be formed by evaporation.

[0051] The material of the mask layer 50 includes but is not limited to silicon oxide (SiO 2 ), silicon nitride (SiN), aluminum nitride (AlN), aluminum oxide (Al 2 O 3 ), gallium oxide (Ga 2 O 3 ), titanium oxide (TiO 2 ), hafnium oxide (HfO 2 ), etc.

[0052] Next, referring to Figure 4 , the mask layer 50 is patterned to form a plurality of implantation region patterns on the mask layer 50, and the implantation region patterns expose part of the semiconductor layer 40; wherein, the implantation region patterns are in a multi-sided sawtooth shape.

[0053] Specifically, the implantation region patterns can be formed by photolithography or electron beam exposure.

[0054] The implantation region patterns are used to distinguish the boundary between the ion implantation region and the non-ion implantation region.

[0055] Figure 9 This is a top view of the mask layer in the embodiment of the present disclosure. As Figure 9 shown, the implantation region pattern 501 is in a multi-sided sawtooth shape.

[0056] The implantation region pattern 501 is designed in a multi-sided sawtooth shape, which effectively prevents the abnormal expansion of the electric field and the aggregation of edge charges, and significantly improves the overall electrical consistency of the device.

[0057] Next, referring to Figure 5, Step 103 is executed to periodically and alternately inject a first ion and a second ion into the semiconductor layer 40 to form a plurality of insulating isolation regions 60 within the semiconductor layer 40, and the plurality of insulating isolation regions 60 divide the semiconductor layer 40 into a plurality of LED unit structures 400; wherein, the first ion is one of a positive ion and a negative ion, and the second ion is the other of the positive ion and the negative ion.

[0058] The semiconductor layer 40 includes a plurality of ion implantation regions and a plurality of non-ion implantation regions distributed in a planar direction. The ion implantation regions are the insulating isolation regions 60, and any two non-ion implantation regions are electrically isolated by the insulating isolation regions 60. One LED unit structure 400 is fabricated in each non-ion implantation region.

[0059] Specifically, referring to Figure 5 , the first ion and the second ion are periodically and alternately implanted into the part of the semiconductor layer 40 exposed by the implantation region pattern 501 to form a plurality of the insulating isolation regions 60.

[0060] It should be explained that, as Figure 9 shown, not all of the semiconductor layer 40 exposed by the implantation region pattern 501 is implanted with ions. Instead, part of the semiconductor layer 40 is implanted with ions to form the insulating isolation regions 60. Therefore, there is a certain distance between the insulating isolation regions 60 and the implantation region pattern 501.

[0061] In an embodiment, the distance between the insulating isolation region 60 and the implantation region pattern 501 is 1 - 3 μm. Here, there is a certain distance between the insulating isolation region 60 and the implantation region pattern 501 so that part of the second doped semiconductor layer 43 is still exposed, and thus electrodes can be formed thereon subsequently. At the same time, the remaining mask layer 50 does not need to be etched away, and the remaining mask layer 50 can be used as an isolation layer between adjacent electrodes located on the second doped semiconductor layer 43 to prevent crosstalk between adjacent electrodes.

[0062] In actual operation, when performing ion implantation, a Spin-Aligned Substrate Rotator (SASR) can be embedded in the LED chip structure. The spin-aligned substrate rotator can rotate the LED chip structure so that the implanted ions are always incident in different crystal orientations, further improving the uniformity of the implantation distribution and expanding the space width of the defect band, and avoiding the influence of channel effects on the lattice perturbation consistency. The spin-aligned substrate rotator keeps the LED chip structure rotating at a constant speed, and the rotation rate can be determined according to actual requirements.

[0063] In one embodiment, the first ions and the second ions are periodically and alternately implanted into the semiconductor layer 40, including: the range of the implantation period is 3 to 5 times. The first ions and the second ions are implanted into the semiconductor layer 40 through multiple periods, which can improve the uniformity of the formed insulating isolation region 60, and further improve the insulation performance of the insulating isolation region 60. At the same time, it is optimal to control the implantation period within 3 to 5 times. Because if the implantation period is too small, the uniformity of the formed insulating isolation region is poor; if the implantation period is too large, the cost will increase.

[0064] In one embodiment, within each implantation period, the first ions and the second ions are both implanted into the semiconductor layer 40 multiple times alternately at a first angle, a second angle, and a third angle.

[0065] Among them, the range of the first angle is 30° to 45°, the range of the second angle is 50° to 65°, and the range of the third angle is 75° to 90°. In a preferred embodiment, the first angle is 45°, and the second angle is , and the third angle is 90°. It should be noted that the first angle, the second angle, and the third angle described here are all the angles between the ion implantation direction and the plane of the semiconductor layer 40.

[0066] Specifically, for example, first, the first ions are implanted. The first ions are first implanted into the semiconductor layer 40 at an angle of 45°. After implanting for a certain time, then they are implanted into the semiconductor layer 40 at an angle of 60°. After implanting for the same certain time, then they are implanted into the semiconductor layer 40 at an angle of 90°. After implanting for a certain time, then the first ions are implanted into the semiconductor layer 40 at an angle of 45° again. After cycling several times according to this rule, the implantation of the first ions ends; after the implantation of the first ions ends, then the second ions are implanted. The second ions are also first implanted into the semiconductor layer 40 at an angle of 45°. After implanting for a certain time, then they are implanted into the semiconductor layer 40 at an angle of 60°. After implanting for the same certain time, then they are implanted into the semiconductor layer 40 at an angle of 90°. After implanting for a certain time, then the second ions are implanted into the semiconductor layer 40 at an angle of 45° again. After cycling several times according to this rule, the implantation of the second ions ends.

[0067] The first ions and the second ions are alternately implanted at multiple angles within one implantation period, which can achieve the establishment of a highly uniform electrical isolation region and improve the insulation performance of the insulating isolation region.

[0068] In one embodiment, the implantation dose of the first ions and the second ions is greater than or equal to , and the implantation energy range is 70 to 150 keV. In a preferred embodiment, the implantation dose of the first ions and the second ions is , the implanted energy is 100 keV.

[0069] In a specific embodiment, at an implantation dose of , under the condition that the implantation energy is 100 keV, periodic alternating implantation of the first ion and the second ion is adopted, and the first ion and the second ion are implanted at multiple angles. In this way, the resistivity of the surface of the insulating isolation region formed can reach or more, the implantation depth is greater than 2 μm, and the thickness of the damaged layer is less than 15 nm, forming a high-resistance region for device isolation, effectively avoiding the influence on the non-ion-implanted region.

[0070] In an embodiment, the first ion is one of a positive ion and a negative ion, and the second ion is the other of a positive ion and a negative ion. For example, if the first ion is a positive ion, then the second ion is a negative ion.

[0071] The positive ions include at least one of silicon ions, boron ions, phosphorus ions, arsenic ions, and magnesium ions; The negative ions include at least one of fluorine ions, hydrogen ions, and oxygen ions.

[0072] In the present disclosure, by performing periodic alternating implantation of positive ions and negative ions on the semiconductor layer to form a plurality of insulating isolation regions in the semiconductor layer. Among them, the positive ions prevent carrier penetration while forming a low-mobility defect region, and the negative ions can create deep-level traps to cause carrier localization. The alternating implantation of positive and negative ions enhances the carrier capture ability, thereby further improving the insulation effect of the insulating isolation region. Thus, a good electrical isolation effect can be achieved through a smaller isolation region, which can not only greatly reduce the isolation distance between micro-LED chips and increase the chip density, but also form good electrical insulation between high-density micro-LED chips.

[0073] In an embodiment, as Figure 5 shown, the insulating isolation region 60 penetrates through the second doped semiconductor layer 43 and the active layer 42 and is located in the first doped semiconductor layer 41.

[0074] The depth of the insulating isolation region 60 should at least penetrate through the second doped semiconductor layer 43 to disconnect the second doped semiconductor layer 43, so as to form an independent LED unit structure.

[0075] Next, referring to Figures 6 to 7 , perform step 104 to form a photonic crystal structure 80 in the insulating isolation region 60 to suppress the lateral diffusion of light.

[0076] In an embodiment, forming the photonic crystal structure 80 in the insulating isolation region 60 includes: Etch the insulating isolation region 60 to form a groove 601 within the insulating isolation region 60; Form a passivation layer 71 covering the bottom and side walls of the groove 601; Form a metal reflective layer 72 covering the passivation layer 71; Form a photonic crystal structure 80 covering the metal reflective layer 72 and filling the groove 601.

[0077] Specifically, first refer to Figure 6 , etch the insulating isolation region 60 to form a groove 601 within the insulating isolation region 60.

[0078] In actual operation, spin - coat a layer of photoresist about 1 μm thick evenly on the surface of the epitaxial wafer and place it on a hot plate for pre - baking to evaporate the moisture inside the photoresist and complete the shaping. Then use a mask plate designed specifically for the photonic crystal structure, and precisely transfer the periodic pattern through ultraviolet exposure and development processes. After development, wash the epitaxial wafer with deionized water, and after hard - baking, clean it with a plasma asher. Perform a reactive ion etching (RIE) or inductively coupled plasma (ICP) step on the above - mentioned epitaxial wafer. Select a mixed gas system, set the etching power to 300 W, the gas flow ratio to 10:5:20 sccm, maintain the chamber pressure at 10 mTorr, and control the etching time at about 60 seconds to meet the etching requirement of a 60 - nm depth. Immediately after etching, remove the residual photoresist through a stripping cleaning ( plasma + solvent cleaning).

[0079] Next, refer to Figure 7 , form a passivation layer 71 covering the bottom and side walls of the groove 601; form a metal reflective layer 72 covering the passivation layer 71.

[0080] In actual operation, the passivation layer 71 and the metal reflective layer 72 can be formed by chemical vapor deposition (CVD), physical vapor deposition (PVD), atomic layer deposition (ALD), or other deposition methods.

[0081] In a preferred embodiment, the passivation layer 71 can be formed using a Plasma Enhanced Chemical Vaper Deposition (PECVD) process to reduce the non-radiative recombination probability. The metal reflection layer 72 can be formed using electron beam evaporation or magnetron sputtering technology, so that under the action of the spin sample rotation system, it can uniformly cover the entire lattice region.

[0082] In the embodiments of the present disclosure, in order to reduce the sidewall damage caused by dry etching during the preparation of the photonic crystal structure, a passivation layer 71 can be deposited in the groove 601 for preparing the photonic crystal structure. The material of the passivation layer 71 includes but is not limited to silicon dioxide (SiO 2 ), silicon nitride (SiN x ), and aluminum oxide (Al 2 O 3 ), and the thickness range is 20 - 30 nm. The main function of the passivation layer 71 is to passivate the inner wall of the groove 601 and isolate the metal reflection layer 72 from the inner wall of the groove 601.

[0083] When selecting the material of the passivation layer, one or a combination of materials such as silicon dioxide, silicon nitride, or aluminum oxide can be selected according to specific application requirements. Silicon dioxide has good electrical insulation performance and thermal stability and is suitable for applications in high-temperature environments; silicon nitride has a low dielectric constant and can be used as an ideal isolation layer in microwave and radio frequency applications to achieve electrical isolation between devices and reduce noise interference; aluminum oxide has excellent mechanical strength and corrosion resistance and is suitable for applications requiring high strength and durability. In addition, the performance of the passivation layer material can be optimized by adjusting the ratio of silicon dioxide, silicon nitride, and aluminum oxide to meet the requirements of different application scenarios.

[0084] To further enhance the reflection effect of the photonic crystal structure, a metal reflection layer 72 can be selectively deposited on the surface of the passivation layer 71. The material of the metal reflection layer 72 includes silver (Ag), aluminum (Al), gold (Au), titanium (Ti), nickel (Ni), chromium (Cr), molybdenum (Mo), copper (Cu), etc. or their alloys, and the thickness range is 20 - 30 nm.

[0085] Next, continue to refer to Figure 7 , to form a photonic crystal structure 80 that covers the metal reflection layer 72 and fills the groove 601.

[0086] In the planar LED process, due to the dielectric constant difference between GaN and air, the maximum light-emitting angle of the quantum well is about , the remaining photons will form a waveguide in the GaN layer for lateral transmission, thereby greatly reducing the light extraction efficiency of the planar LED. In order to effectively suppress the light propagating laterally in the planar micro-LED device and improve its vertical light extraction efficiency (Light Extraction Efficiency, LEE) in the embodiments of the present disclosure, a photonic crystal structure is formed in the insulating isolation region. A photonic crystal is an artificial micro-structured material with a periodic refractive index distribution in space. By controlling its periodic structure, strong reflection or prohibited propagation of light in a specific wavelength range can be generated, thereby forming a photonic bandgap effect.

[0087] In the embodiments of the present disclosure, before forming the photonic crystal structure in the groove, it is necessary to first determine the photonic crystal structure that matches the emission wavelength of the LED chip structure in the present disclosure. For example, a blue LED chip structure is selected, and the central wavelength of the blue LED chip structure is about 450 nm. Taking the blue LED as an example in the embodiments of the present disclosure, simulation is carried out by the Finite-Difference Time-Domain (FDTD) method. First, a two-dimensional GaN waveguide model is established. The upper part of the waveguide is air, the thickness of the waveguide is set to 1 μm, and the bottom substrate is set to Al 2 O 3 , as a typical structure of the blue LED. The photonic crystal structure is designed to introduce periodic air holes on the top layer of the waveguide. The simulation domain is 10×10 μm², and the boundary condition adopts the PML (Perfectly Matched Layer) absorbing boundary to avoid the interference of reflection on the simulation results. The excitation source is a short pulse electromagnetic wave with vertical incidence, and its spectrum covers the wavelength range of 400~500 nm, aiming to observe the response behavior of the structure at the central wavelength of 450 nm. The design principle is based on Bragg scattering and interference effects to construct a photonic bandgap, restricting the propagation of light with a specific frequency in a specific direction. In the two-dimensional periodic structure, the periodic change of the refractive index causes strong scattering of light, forming a quasi-bandgap, resulting in a bandgap suppression effect for photons in the lateral propagation direction (i.e., within the GaN layer), while forming enhanced emission in the vertical direction. The simulation results show that the photonic crystal structure with a period of 280 nm, an aperture of 140 nm, and a depth of 60 nm has the widest bandgap and the strongest reflection intensity in the 450 nm band, and the formed photonic crystal structure is more conducive to the vertical emission of blue LED light.

[0088] After obtaining the period, aperture, and depth of the photonic crystal structure that matches the emission wavelength of the LED chip structure, a photonic crystal structure 80 is formed on the surface of the metal reflection layer 72.

[0089] In the embodiments of the present disclosure, by introducing a two-dimensional photonic crystal structure and optimizing the period, aperture, and depth of the photonic crystal structure, the bottleneck in the light extraction efficiency of traditional planar light-emitting devices is effectively broken, and a solid foundation is also provided for subsequent integrated optical microstructures, array packaging, etc., enabling the entire structure to have good process compatibility and structural stability, and being suitable for the integrated manufacturing of large-scale micron LED arrays.

[0090] In the present disclosure, a photonic crystal structure is formed in the insulating isolation region, the emission wavelength of the active layer is matched with the photonic bandgap of the photonic crystal, and the lateral propagation of photons in the quantum wells in the active layer is restricted, thereby significantly increasing the light extraction intensity of the planar micron LED in the vertical direction.

[0091] Next, referring to Figure 8 , part of the second doped semiconductor layer 43 and the active layer 42 are etched away to expose part of the first doped semiconductor layer 41; a first electrode 91 is formed on the exposed first doped semiconductor layer 41; a second electrode 92 is formed on the second doped semiconductor layer 43 not covered by the mask layer 50.

[0092] In actual operation, an electron beam evaporation technique can be used to sputter metal electrodes to form the first electrode 91 and the second electrode 92.

[0093] The first electrode 91 and the second electrode 92 have different conduction types, and the conduction types of the first electrode 91 and the second electrode 92 are the same as the conduction types of the first doped semiconductor layer 41 and the second doped semiconductor layer 43 respectively. For example, if the conduction type of the first doped semiconductor layer 41 is n-type and the conduction type of the second doped semiconductor layer 43 is p-type, then the conduction type of the first electrode 91 is n-type and the conduction type of the second electrode 92 is p-type.

[0094] The materials of the first electrode 91 and the second electrode 92 may include at least one of Cr, Au, Ti, Ag, and Pt.

[0095] The LED chip structure of the embodiments of the present disclosure shares a first electrode 91, which simplifies the electrode preparation process and reduces the manufacturing cost.

[0096] Next, continuing to refer to Figure 8 , a microlens 93 is formed on the above-mentioned epitaxial wafer. It should be noted that although only one microlens 93 is shown in the figure, multiple microlenses can be formed to form a microlens array.

[0097] Specifically, a hot embossing or ultraviolet (UV) lithography technique can be used to form a microlens array aligned with the chip on the light-emitting surface. The diameter of each microlens is about 10 μm, and the radius of curvature is about 25 μm.

[0098] In the manufacturing method of the LED chip structure proposed by the present disclosure, not only the damage and thermal mismatch problems existing in the traditional etching electrical isolation process are fundamentally solved, but also the overall consistency and reliability of the device are improved. Through the integration of spatial carrier control and defect tunable mechanisms, this structure provides a new solution for the construction of the next-generation high-density micron LED arrays, with broad engineering value and industrial transformation prospects.

[0099] The embodiment of the present disclosure also provides an LED chip structure. Figure 10 It is a schematic structural diagram of the LED chip structure provided by the embodiment of the present disclosure. As Figure 10 shown, the structure includes: Substrate 10; A semiconductor layer 40 located on the substrate 10, and the semiconductor layer 40 includes a first doped semiconductor layer 41, an active layer 42, and a second doped semiconductor layer 43 stacked in sequence from bottom to top; A plurality of insulating isolation regions 60 located within the semiconductor layer 40, and the insulating isolation regions 60 include a first ion and a second ion. The plurality of insulating isolation regions 60 divide the semiconductor layer into a plurality of LED unit structures; wherein, the first ion is one of a positive ion and a negative ion, and the second ion is the other of the positive ion and the negative ion; A photonic crystal structure 80 located within the insulating isolation region 60 to inhibit the lateral diffusion of light.

[0100] In one embodiment, the substrate 10 can be a single-element semiconductor material substrate (such as a silicon substrate, a germanium substrate, etc.), a compound semiconductor material substrate (such as a germanium-silicon substrate, etc.), or a silicon-on-insulator (SOI) substrate, a germanium-on-insulator (GOI) substrate, or a sapphire substrate, etc. In a preferred embodiment, the substrate 10 can be a sapphire substrate.

[0101] In one embodiment, the LED chip structure further includes: a second insulating layer 20 located on the substrate 10.

[0102] The material of the second insulating layer 20 includes but is not limited to silicon dioxide (SiO 2 ), silicon nitride (SiN x ), and aluminum oxide (Al 2 O 3 )

[0103] The role of these materials in the LED chip structure is to provide effective isolation and protection, improving the performance and reliability of the chip. By selecting appropriate insulating layer materials, the electrical performance and thermal stability of the LED chip can be enhanced.

[0104] When selecting insulating layer materials, one or a combination of materials such as silicon dioxide, silicon nitride, or aluminum oxide can be chosen according to specific application requirements. Silicon dioxide has good electrical insulation performance and thermal stability and is suitable for applications in high-temperature environments; silicon nitride has a low dielectric constant and can be used as an ideal isolation layer in microwave and radio frequency applications to achieve electrical isolation between devices and reduce noise interference; aluminum oxide has excellent mechanical strength and corrosion resistance and is suitable for applications requiring high strength and durability. In addition, the performance of the insulating layer material can be optimized by adjusting the ratio of silicon dioxide, silicon nitride, and aluminum oxide to meet the requirements of different application scenarios.

[0105] In one embodiment, the LED chip structure further includes: a first insulating layer 30, which is located between the substrate 10 and the semiconductor layer 40, wherein the material of the first insulating layer 30 includes AlN (aluminum nitride), AlGaN (aluminum gallium nitride), or BN (boron nitride). However, it should be explained that the material of the first insulating layer 30 is not limited thereto.

[0106] Specifically, the first insulating layer 30 is located on the second insulating layer 20. The thickness range of the first insulating layer 30 is 10 - 30 nm.

[0107] The first insulating layer 30 not only enhances the carrier blocking ability but also prevents the asymmetric diffusion of the implanted ions in the lateral direction, enhancing the insulation effect of the insulation isolation region 60.

[0108] The semiconductor layer 40 is located on the first insulating layer 30, and the semiconductor layer 40 includes a first doped semiconductor layer 41, an active layer 42, and a second doped semiconductor layer 43 stacked in sequence from bottom to top.

[0109] The first doped semiconductor layer 41 can be an n-type semiconductor layer, and the second doped semiconductor layer 43 can be a p-type semiconductor layer. More specifically, the first doped semiconductor layer 41 can be an n-type GaN layer, and the second doped semiconductor layer 43 can be a p-type GaN layer.

[0110] The active layer 42 is the key part for the LED chip to emit light and is responsible for generating light. It is composed of periodically arranged In x Ga 1-x N quantum well layers and GaN quantum barrier layers, In x Ga 1-xThe thickness of the N quantum well layer is 1.5 - 3.5 nm, the thickness of the GaN quantum barrier layer is 9 - 15 nm, In x Ga 1-x The number of periods of the InGaN quantum well and the GaN quantum barrier is 3 - 7.

[0111] See Figure 9 and Figure 10 The LED chip structure further includes: a mask layer 50 located on the semiconductor layer 40, and a plurality of injection region patterns 501 are formed on the mask layer 50, and the injection region patterns 501 expose the insulating isolation region 60; wherein, the injection region patterns 501 are in a polygonal serrated shape.

[0112] The injection region patterns 501 are designed in a polygonal serrated shape, effectively preventing abnormal expansion of the electric field and edge charge accumulation, and significantly improving the overall electrical consistency of the device.

[0113] The semiconductor layer 40 includes a plurality of ion implantation regions and a plurality of non-ion implantation regions distributed in a planar direction. The ion implantation regions are the insulating isolation regions 60. Any two non-ion implantation regions are electrically isolated by the insulating isolation regions 60, and an LED unit structure is fabricated in each non-ion implantation region.

[0114] It should be noted that as Figure 9 shown, the injection region patterns 501 not only expose the insulating isolation regions 60, but also expose a part of the semiconductor layer 40. Therefore, there is a certain distance between the insulating isolation regions 60 and the injection region patterns 501.

[0115] In an embodiment, the distance between the insulating isolation region 60 and the injection region patterns 501 is 1 - 3 μm. Here, there is a certain distance between the insulating isolation region 60 and the injection region patterns 501 so that a part of the second doped semiconductor layer 43 is also exposed, so that an electrode can be formed thereon. At the same time, the mask layer 50 can serve as an isolation layer between adjacent electrodes located on the second doped semiconductor layer 43 to prevent crosstalk between adjacent electrodes.

[0116] In an embodiment, the first ion is one of a positive ion and a negative ion, and the second ion is the other of a positive ion and a negative ion. For example, if the first ion is a positive ion, then the second ion is a negative ion.

[0117] The positive ions include at least one of silicon ions, boron ions, phosphorus ions, arsenic ions, and magnesium ions; The negative ions include at least one of fluoride ions, hydrogen ions, and oxygen ions.

[0118] In the present disclosure, the insulating isolation region includes positive ions and negative ions. Among them, the positive ions prevent carriers from penetrating while forming a low-mobility defect region, and the negative ions can create deep-level traps to cause carrier localization. The presence of positive and negative ions enhances the carrier capture ability, thereby further improving the insulation effect of the insulating isolation region. As a result, a good electrical isolation effect can be achieved through a smaller isolation region, which can not only greatly reduce the isolation distance between micro-LED chips and increase the chip density, but also form good electrical insulation between high-density micro-LED chips.

[0119] In one embodiment, as Figure 10 shown, the insulating isolation region 60 penetrates through the second doped semiconductor layer 43 and the active layer 42 and is located within the first doped semiconductor layer 41.

[0120] The depth of the insulating isolation region 60 should at least penetrate through the second doped semiconductor layer 43 to disconnect the second doped semiconductor layer 43, so as to form an independent LED unit structure.

[0121] In one embodiment, the LED chip structure further includes: a groove 601 located within the insulating isolation region 60; a passivation layer 71 covering the bottom and side walls of the groove 601; a metal reflection layer 72 covering the passivation layer 71; The photonic crystal structure 80 covers the metal reflection layer 72 and fills the groove 601.

[0122] In the embodiments of the present disclosure, in order to reduce the sidewall damage caused by dry etching during the preparation of the photonic crystal structure, a passivation layer can be deposited in the groove used for preparing the photonic crystal structure. The material of the passivation layer 71 includes but is not limited to silicon dioxide (SiO 2 ), silicon nitride (SiN x ), and aluminum oxide (Al 2 O 3 ), and the thickness range is 20 - 30 nm. The main function of the passivation layer 71 is to passivate the inner wall of the groove 601 and isolate the metal reflection layer 72 from the inner wall of the groove 601.

[0123] When selecting the passivation layer material, one or a combination of materials such as silicon dioxide, silicon nitride, or aluminum oxide can be selected according to specific application requirements. Silicon dioxide has good electrical insulation properties and thermal stability and is suitable for applications in high-temperature environments; silicon nitride has a low dielectric constant and can be used as an ideal isolation layer in microwave and radio frequency applications to achieve electrical isolation between devices and reduce noise interference; aluminum oxide has excellent mechanical strength and corrosion resistance and is suitable for applications that require high strength and durability. In addition, the performance of the passivation layer material can be optimized by adjusting the proportions of silicon dioxide, silicon nitride, and aluminum oxide to meet the requirements of different application scenarios.

[0124] To further enhance the reflection effect of the photonic crystal structure, a metal reflection layer 72 can be selectively formed on the surface of the passivation layer 71. The material of the metal reflection layer 72 includes silver (Ag), aluminum (Al), gold (Au), titanium (Ti), nickel (Ni), chromium (Cr), molybdenum (Mo), copper (Cu), etc. or their alloys, and the thickness range is 20 - 30 nm.

[0125] The metal reflection layer 72 is mainly used to block and reflect the light reflected in the active layer and block the light transmission path between adjacent LED unit structures.

[0126] In the planar LED process, due to the difference in dielectric constants between GaN and air, the maximum light-emitting angle of the quantum well is about , and the remaining photons will form a waveguide in the GaN layer for transverse transmission, thereby greatly reducing the light extraction efficiency of the planar LED. In order to effectively suppress the light propagating transversely in the planar micro-LED device and improve its vertical light extraction efficiency (Light Extraction Efficiency, LEE) in the embodiments of the present disclosure, a photonic crystal structure is formed in the insulating isolation region. A photonic crystal is an artificial microstructural material with a periodic refractive index distribution in space. By controlling its periodic structure, strong reflection or prohibited propagation of light in a specific wavelength range can be achieved, thereby forming a photonic bandgap effect.

[0127] In the embodiments of the present disclosure, before forming the photonic crystal structure in the groove, it is necessary to first determine a photonic crystal structure that matches the emission wavelength of the LED chip structure in the present disclosure. For example, a blue light LED chip structure is selected, and the central wavelength of the blue light LED chip structure is about 450 nm. Taking the blue light LED as an example, through simulation by the Finite-Difference Time-Domain (FDTD) method, first establish a two-dimensional GaN waveguide model, with air above the waveguide, the waveguide thickness is set to 1 μm, and the bottom substrate is set to Al 2 O 3, as a typical structure of a blue light LED. The photonic crystal structure is designed to introduce periodic air holes on the top layer of the waveguide. The simulation domain is 10×10μm², and the boundary condition uses PML (Perfectly Matched Layer) absorbing boundary to avoid the interference of reflection on the simulation results. The excitation source is a short pulse electromagnetic wave with vertical incidence, and its spectrum covers the wavelength range of 400~500nm, aiming to observe the response behavior of this structure at the central wavelength of 450nm. The design principle is based on Bragg scattering and interference effects to construct a photonic bandgap, restricting the propagation of light with specific frequencies in specific directions. In a two-dimensional periodic structure, the periodic change of the refractive index leads to strong scattering of light, forming a quasi-bandgap, resulting in a bandgap suppression effect of photons in the transverse propagation direction (i.e., within the GaN layer), while forming enhanced emission in the vertical direction. The simulation results show that the photonic crystal structure with a period of 280nm, an aperture of 140nm, and a depth of 60nm has the widest bandgap and the strongest reflection intensity in the 450nm band, and the formed photonic crystal structure is more conducive to the vertical emission of blue light LED light.

[0128] After obtaining the period, aperture, and depth of the photonic crystal structure that match the emission wavelength of the LED chip structure, a photonic crystal structure 80 is formed on the surface of the metal reflective layer 72.

[0129] In the embodiments of the present disclosure, by introducing a two-dimensional photonic crystal structure and optimizing the period, aperture, and depth of the photonic crystal structure, the bottleneck in the light extraction efficiency of traditional planar light-emitting devices is effectively broken, and it also provides a solid foundation for subsequent integrated optical microstructures, array packaging, etc., making the entire structure have good process compatibility and structural stability, and being suitable for the integrated manufacturing of large-scale micron LED arrays.

[0130] In the present disclosure, a photonic crystal structure is formed in the insulating isolation region to match the emission wavelength of the active layer with the photonic bandgap of the photonic crystal, restricting the transverse propagation of photons in the quantum wells in the active layer, thereby significantly improving the light extraction intensity of the planar micron LED in the vertical direction.

[0131] In one embodiment, the LED chip structure further includes: a first electrode 91 located on the first doped semiconductor layer 41; a second electrode 92 located on the second doped semiconductor layer 43.

[0132] The conduction types of the first electrode 91 and the second electrode 92 are different, and the conduction types of the first electrode 91 and the second electrode 92 are the same as the conduction types of the first doped semiconductor layer 41 and the second doped semiconductor layer 43 respectively. For example, if the conduction type of the first doped semiconductor layer 41 is n-type and the conduction type of the second doped semiconductor layer 43 is p-type, then the conduction type of the first electrode 91 is n-type and the conduction type of the second electrode 92 is p-type.

[0133] The materials of the first electrode 91 and the second electrode 92 may include at least one of Cr, Au, Ti, Ag, and Pt.

[0134] The LED chip structure of the embodiments of the present disclosure shares a first electrode 91, which simplifies the electrode preparation process and reduces the manufacturing cost.

[0135] In one embodiment, the LED chip structure further includes: a microlens 93 located on the above-mentioned epitaxial wafer. It should be noted that although only one microlens 93 is shown in the figure, multiple microlenses can be formed to form a microlens array.

[0136] Specifically, a microlens array aligned with the chip can be formed on the light-emitting surface by using hot embossing or ultraviolet (UV) lithography technology. The diameter of each microlens is about 10 μm, and the radius of curvature is about 25 μm.

[0137] It should be understood that the various forms of processes shown above can be reordered, added, or deleted. For example, the steps described in the present disclosure can be executed in parallel, sequentially, or in a different order, as long as the desired results of the technical solutions disclosed in the present disclosure can be achieved. This is not limited herein.

[0138] In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one of these features. In the description of the present disclosure, "a plurality" means two or more, unless otherwise specifically defined.

[0139] As described above, the above are only specific embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art can easily think of changes or substitutions within the technical scope disclosed by the present disclosure, and all should be covered by the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.

Claims

1. A method for preparing an LED chip structure, characterized in that: The method comprises: providing a substrate; forming a semiconductor layer on the substrate, wherein the semiconductor layer comprises a first doped semiconductor layer, an active layer, and a second doped semiconductor layer stacked sequentially from bottom to top; Periodically and alternately injecting first ions and second ions into the semiconductor layer to form a plurality of insulating isolation regions in the semiconductor layer, wherein the plurality of insulating isolation regions divide the semiconductor layer into a plurality of LED unit structures; wherein the first ions are one of positive ions and negative ions, and the second ions are the other of positive ions and negative ions; A photonic crystal structure is formed in the insulating isolation region to suppress lateral diffusion of light.

2. The method for preparing an LED chip structure according to claim 1, characterized in that: In each implantation cycle, the first ions and the second ions are implanted into the semiconductor layer alternately multiple times at a first angle, a second angle, and a third angle.

3. The method for preparing an LED chip structure according to claim 2, characterized in that: The first angle ranges from 30° to 45°, the second angle ranges from 50° to 65°, and the third angle ranges from 75° to 90°.

4. The method for preparing an LED chip structure according to claim 1, characterized in that: The positive ions include at least one of silicon ions, boron ions, phosphorus ions, arsenic ions and magnesium ions; The negative ions include at least one of fluoride ions, hydrogen ions and oxygen ions.

5. The method for preparing an LED chip structure according to claim 1, characterized in that: The insulating isolation region penetrates the second doped semiconductor layer and the active layer and is located in the first doped semiconductor layer.

6. The method for preparing an LED chip structure according to claim 1, characterized in that: The step of periodically and alternately injecting the first ions and the second ions into the semiconductor layer comprises: forming a mask layer on the semiconductor layer; Performing patterning on the mask layer to form a plurality of implantation region patterns on the mask layer, wherein the implantation region patterns expose a portion of the semiconductor layer; wherein the implantation region patterns are in a polygonal sawtooth shape; The first ions and the second ions are periodically and alternately implanted into the exposed portion of the semiconductor layer to form a plurality of insulating isolation regions.

7. The method for preparing an LED chip structure according to claim 6, characterized in that: The distance between the insulating isolation region and the implantation region pattern is 1-3 μm.

8. The method for preparing an LED chip structure according to claim 1, characterized in that: The forming of a photonic crystal structure in the insulating isolation region comprises: Etching the insulating isolation region to form a groove in the insulating isolation region; forming a passivation layer covering the bottom and sidewalls of the groove; forming a metal reflective layer covering the passivation layer; A photonic crystal structure is formed which covers the metal reflective layer and fills the groove.

9. The method for preparing an LED chip structure according to claim 1, characterized in that: The method further comprises: Before forming the semiconductor layer, a first insulating layer is formed on the substrate, wherein the material of the first insulating layer includes AlN, AlGaN or BN.

10. An LED chip structure, characterized in that: The LED chip structure comprises: substrate; A semiconductor layer located on the substrate, the semiconductor layer comprising a first doped semiconductor layer, an active layer, and a second doped semiconductor layer stacked sequentially from bottom to top; A plurality of insulating isolation regions located in the semiconductor layer, the insulating isolation regions comprising first ions and second ions, the plurality of insulating isolation regions dividing the semiconductor layer into a plurality of LED unit structures; wherein the first ions are one of positive ions and negative ions, and the second ions are the other of positive ions and negative ions; A photonic crystal structure is located in the insulating isolation region to suppress lateral diffusion of light.

11. The LED chip structure according to claim 10, characterized in that: The positive ions include at least one of silicon ions, boron ions, phosphorus ions, arsenic ions and magnesium ions; The negative ions include at least one of fluoride ions, hydrogen ions and oxygen ions.

12. The LED chip structure according to claim 10, characterized in that: The insulating isolation region penetrates the second doped semiconductor layer and the active layer and is located in the first doped semiconductor layer.

13. The LED chip structure according to claim 10, characterized in that: The LED chip structure further includes: A mask layer is located on the semiconductor layer, and a plurality of implantation region patterns are formed on the mask layer, wherein the implantation region patterns expose the insulating isolation region; wherein the implantation region patterns are in a polygonal sawtooth shape.

14. The LED chip structure according to claim 13, characterized in that: The distance between the insulating isolation region and the implantation region pattern is 1-3 μm.

15. The LED chip structure according to claim 10, characterized in that: The LED chip structure further includes: a groove located in the insulating isolation region; a passivation layer covering the bottom and sidewalls of the groove; A metal reflective layer covering the passivation layer; The photonic crystal structure covers the metal reflective layer and fills the groove.

16. The LED chip structure according to claim 10, characterized in that: The LED chip structure further includes: A first insulating layer is located between the substrate and the semiconductor layer, wherein a material of the first insulating layer includes AlN, AlGaN or BN.

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