Diode matrix growth substrate with mesas with different pore formation levels
Patent Information
- Application Number
- DE602023005230
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-10-28
- Filing Date
- 2023-10-25
- Publication Date
- 2025-07-30
- Estimated Expiration
- 2043-10-25
AI Technical Summary
Existing methods for manufacturing a matrix of light-emitting diodes that emit light radiation at different wavelengths require complex localized implantation of dopants, complicating the manufacturing process.
A growth substrate is developed with mesas categorized by porosification levels, allowing for the production of InGaN-based diodes that emit or detect light radiation at different wavelengths without the need for localized dopant implantation steps, utilizing a crystalline structure with varying porosification levels and insulation layers to achieve distinct relaxation rates.
The method simplifies the manufacturing process and enables the production of diodes capable of emitting light at different wavelengths, such as blue, green, and red, forming an RGB micro-screen, while maintaining efficient epitaxial growth and relaxation rates.
Description
DOMAINE TECHNIQUE
[0001] The field of the invention is that of growth substrates comprising mesas allowing the manufacture of a matrix of diodes adapted to emit or detect, natively, light radiation at different wavelengths. ÉTAT DE LA TECHNIQUE ANTÉRIEURE
[0002] There are methods for manufacturing a matrix of light-emitting diodes adapted to emit, natively, light radiation at different wavelengths. The matrix of diodes can then comprise diodes adapted to emit red light, other diodes green light, and finally others blue light. Such a matrix of diodes then forms a micro-screen with native RGB emission (for Red, Green, Blue, in English).
[0003] The diodes are said to be native emitting, in the sense that the active area of each diode emitting at a given wavelength differs from the active areas of diodes emitting at another wavelength. In the case of diodes made from InGaN, the active areas differ from each other by the proportion of indium in the quantum wells.
[0004] Such a matrix of native emitting diodes is thus distinguished from color conversion technologies where the diodes all emit at the same wavelength, for example in blue, and are each coated with a pad comprising phosphors, for example semiconductor nanocrystals forming quantum dots, to convert at least part of the incident light into light of another wavelength.
[0005] To fabricate a native emitting diode array, one approach is to use a growth substrate with mesas that have been partially rendered porous during an electrochemical porosification step. This electrochemical porosification technique is presented in particular in the article by Griffin and Oliver entitled Porous nitride semiconductors reviewed, J. Phys. D: Appl. Phys. 53 (2020) 383002.
[0006] Document EP3840065A1 describes an example of a method for manufacturing a growth substrate and then a diode array using the electrochemical porosification technique. The method comprises producing a growth substrate (also called a pseudo-substrate) having several InGaN mesas, each formed from a doped InGaN layer made porous during an electrochemical porosification step, and an upper layer of InGaN that is not intentionally doped or lightly doped so that it is not porosified (i.e. it remains intact or dense, therefore non-porous). The diodes are then produced by epitaxial growth from the upper layer.
[0007] EP 3 840 016 A1 and US 2022 / 208848 A1 disclose growth substrates comprising mesas according to the prior art.
[0008] The doped layers of the mesas can have different doping levels from one mesa to another, which leads to different porosification and therefore to a different relaxation rate. The diodes made from the different mesas then include quantum wells with a more or less significant proportion of indium, thus making it possible to obtain pixels emissive at different wavelengths.
[0009] However, to obtain mesas whose InGaN doped layers have different doping levels from one mesa to another, it is necessary to carry out, before the mesa production step, a localized implantation step of dopants in a full wafer InGaN layer, with different doping levels, which can complicate the manufacturing process. EXPOSÉ DE L'INVENTION
[0010] The invention aims to remedy at least in part the drawbacks of the prior art, and more particularly to propose a growth substrate, and its manufacturing method, for the manufacturing of a matrix of diodes adapted to emit or detect, natively, light radiation at different wavelengths. This growth substrate can be manufactured by a simplified method compared to that of the prior art described previously, in that it does not include steps of localized implantation of dopants before the production of the mesas.
[0011] For this, the object of the invention is a growth substrate suitable for the production by epitaxy of a matrix of diodes based on InGaN, comprising: ∘ a lower insulation layer made of a non-porous crystalline material based on GaN; ∘ mesas M (i), with i ranging from 0 to N, made of crystalline materials based on GaN, resting on and in contact with the lower insulation layer, and each comprising N doped layers, with N≥2, separated two by two by an intermediate insulation layer made of a non-porous material, and each having a free upper face suitable for the production by epitaxy of a diode of the matrix; the mesas being configured according to at least three different categories among which: a category of mesas called M (N) where the N doped layers are porous; a category of mesas called M (0) where none of the doped layers is porous; a category of mesas called M (n) where n doped layers are porous, with 1≤n <N.
[0012] Each mesa M (i) may comprise an epitaxial recovery layer resting on an upper doped layer among the N doped layers, made of a non-porous crystalline material based on InGaN whose lattice parameter am< cre of the relaxed material is greater than the effective lattice parameter ae< cii of the lower insulation layer: ∘ the epitaxial recovery layer of each mesa M (N) having a maximum lattice parameter ae< cre(N); ∘ the epitaxial recovery layer of each mesa M (0) having a lattice parameter ae< cre(0) less than ae< cre(N); ∘ the epitaxial recovery layer of each mesa M (n) having an intermediate lattice parameter ae< cre(n) less than ae< cre(N) and different from ae< cre(0).
[0013] The intermediate insulating layer of each mesa may have a thickness less than that of the adjacent doped layers.
[0014] The intermediate insulation layer of each mesa can have a thickness between 10nm and 100nm.
[0015] The lower insulation layer and the intermediate insulation layer may have a doping level of at most 5x10 17< cm -3< . Preferably, the intermediate insulation layer is not intentionally doped.
[0016] The doped layers are preferably n-type doped.
[0017] The lower doped layers of the M(i) mesas may be made of the same material and may have the same thickness from one mesa to another. The intermediate insulating layers of the M(i) mesas may be made of the same material and may have the same thickness from one mesa to another. The upper doped layers of the M(i) mesas may be made of the same material and may have the same thickness from one mesa to another.
[0018] The invention also relates to an optoelectronic device comprising a growth substrate according to any one of the preceding characteristics; and an array of InGaN-based diodes D (i), epitaxially grown from the mesas of the growth substrate, the diodes being adapted to emit or detect light radiation at different wavelengths, the wavelength being different from one category of mesas M (i) to another.
[0019] The optoelectronic device can form an RGB micro-screen where the diodes D (i) are light-emitting diodes configured to emit light radiation at least in the blue and red ranges.
[0020] The invention also relates to a method of manufacturing a growth substrate according to any one of the preceding characteristics, comprising the following steps: ∘ determination of a value of an electrical voltage to be applied during a subsequent electrochemical porosification step; ∘ production of a crystalline stack, comprising, from bottom to top: a lower continuous insulation layer made of a GaN-based crystalline material and non-porosifiable at said predetermined value of the electrical voltage to be applied; N doped continuous layers, with N≥2, made of GaN-based crystalline materials and porosifiable at said predetermined value of the electrical voltage to be applied; at least one intermediate continuous insulation layer, separating the doped continuous layers two by two, made of a GaN-based crystalline material and non-porosifiable at said predetermined value of the electrical voltage to be applied; ∘ localized etching of the crystalline stack, so as to form said mesas M (i);∘ production of several electrodes, in contact with the doped layers to be porosified according to the different categories of mesas M (i); ∘ simultaneous electrochemical porosification of said doped layers to be porosified, by application to the doped layers to be porosified of the predetermined value of the electrical voltage.;
[0021] The material of the lower continuous insulation layer and the material of the intermediate continuous insulation layer may have a doping level lower than a predefined minimum value from which they can be porosified taking into account the predetermined value of the electrical voltage applied during the porosification step.
[0022] The manufacturing process may include the following steps: ∘ following the porosification step, removal of the electrodes, then conformal deposition of a thin insulating layer covering the mesas; ∘ deposition of a thick filling layer, filling the spaces between the mesas, and thinning of the thick filling layer so as to free an upper portion of the thin insulating layer covering an upper surface of the mesas M (i); ∘ selective etching of the upper portion of the thin insulating layer, selectively to the mesas M (i), freeing the upper surface thereof.
[0023] The crystal stack may include a continuous InGaN-based epitaxial regrowth layer, resting on a top doped continuous layer among the N doped continuous layers.
[0024] After the porosification step, an InGaN-based epitaxial recovery layer can be grown on a top doped layer among the N doped layers of each mesa M(i).
[0025] The invention also relates to a method of manufacturing an optoelectronic device according to any one of the preceding characteristics, comprising the following steps: ∘ manufacturing the growth substrate by the method according to any one of the preceding characteristics; then ∘ production of a matrix of diodes D (i) by epitaxy from the mesas M (i) of the growth substrate, the diodes then being adapted to emit or detect light radiation at different wavelengths, the wavelength being different from one category of mesas M (i) to another. BRÈVE DESCRIPTION DES DESSINS
[0026] Other aspects, aims, advantages and characteristics of the invention will appear better on reading the following detailed description of preferred embodiments thereof, given by way of non-limiting example, and made with reference to the appended drawings in which: there figure 1A is a schematic and partial cross-sectional view of an optoelectronic device according to one embodiment, comprising a growth substrate and a diode matrix; figure 1B is a schematic and partial view, in cross-section, of a growth substrate according to a first embodiment variant; the figure 1C is a schematic and partial view, in cross-section, of a growth substrate according to a second embodiment variant; the figure 2 illustrates an example of the relationship between the doping level of a doped crystalline layer as a function of the applied electrical voltage, highlighting the domain of existence of electrochemical porosification; figures 3A à 3C are schematic and partial views, from above ( fig.3A ), in cross section ( fig.3B ), and in perspective ( fig.3C ) of a growth substrate according to an alternative embodiment; the figures 4A et 4B are schematic and partial views, in cross-section ( fig.4A ) and in perspective ( fig.4B ), of a growth substrate according to another embodiment variant; the figures 5A à 5H illustrate different steps of a manufacturing process of an optoelectronic device comprising a growth substrate similar to that of the fig.1B , where the epitaxial recovery layer is produced before the electrochemical porosification step; figures 6A à 6D illustrate different steps of a manufacturing process of an optoelectronic device comprising a growth substrate similar to that of the fig.1B , where the epitaxial recovery layer is produced after the electrochemical porosification step. EXPOSÉ DÉTAILLÉ DE MODES DE RÉALISATION PARTICULIERS
[0027] In the figures and in the remainder of the description, the same references represent identical or similar elements. In addition, the different elements are not shown to scale so as to enhance the clarity of the figures. Furthermore, the different embodiments and variants are not mutually exclusive and may be combined with each other. Unless otherwise indicated, the terms "substantially", "approximately", "of the order of" mean to within 10%, and preferably to within 5%. Furthermore, the terms "between ... and ..." and equivalent mean that the limits are included, unless otherwise indicated.
[0028] The invention relates to a growth substrate suitable for the epitaxial fabrication of an array of InGaN-based diodes, the diodes being capable of natively emitting or detecting light radiation at different wavelengths. It also relates to an optoelectronic device comprising the growth substrate and the array of diodes. Finally, it relates to methods for fabricating the growth substrate and the optoelectronic device.
[0029] The optoelectronic device may be a native emission micro-screen, for example of the RGB type. The diodes may be light-emitting diodes or laser diodes. Alternatively or additionally, the optoelectronic device may be a detection device, the diodes then being photodetectors.
[0030] There figure 1A is a schematic and partial view of an optoelectronic device 1, according to one embodiment. The optoelectronic device 1 is here a micro-screen with native RGB emission, where the pitch of the diodes D (i) can be less than or equal to approximately 10 µm. The index i, ranging from 0 to N, relates to the categories (presented later) of the mesas M (i) and therefore of the diodes D (i). The figure 1B illustrates a first variant embodiment where the growth substrate 10 comprises the types of mesas M (0), M (1)u and M (2), and the figure 1C illustrates a second embodiment variant where the growth substrate 10 comprises the types of mesas M (0), M (1)d and M (2).
[0031] Here and for the remainder of the description, a direct three-dimensional orthogonal reference frame XYZ is defined, where the X and Y axes form a main plane of a support layer 11, 12, and where the Z axis is oriented along the thickness of the growth substrate 10, in the direction of the diodes D (i).
[0032] The optoelectronic device 1 generally comprises a growth substrate 10 from which a matrix of diodes D (i) has been produced by epitaxy. The electrical polarization electrodes of the diodes are not shown here for the sake of clarity.
[0033] The growth substrate 10 generally comprises a support layer formed here by a support substrate 11 and a lower insulation layer 12, and mesas M (i) each intended for the production by epitaxial resumption of a diode D (i) of the matrix. A mesa (i.e. an elevation, a relief) is a part of the growth substrate 10 projecting from the support layer. The mesas are produced by localized etching of an initial crystalline stack.
[0034] The growth substrate 10 is made from crystalline GaN, that is to say it is made from GaN and / or its compounds such as In x Ga 1-x N, Al y Ga 1-y N, or even In x Al y Ga 1-xy N. More precisely, the mesas M (i) comprise N doped layers 13, 15 separated two by two by an intermediate insulation layer 14. An epitaxial recovery layer 16, which can be made before or after the electrochemical porosification step, rests on the upper doped layer 15.
[0035] Generally speaking, by GaN-based material, we mean that the material can be GaN and / or its compounds. It can thus be In x Al y Ga 1-xy N where the proportion of indium x can be zero and where the proportion of aluminum y can also be zero. And by InGaN-based material, we mean that it is made of InGaN or InAlGaN. It can thus be made of In x Al y Ga 1-xy N where the proportion of indium x is non-zero and where the proportion of aluminum y can be zero.
[0036] M(i) mesas are classified into different categories, depending on whether or not they contain one or more porous doped layers. As explained later, some doped layers are made porous during the same electrochemical porosification step of the manufacturing process. The different categories are called M(i), with i ranging from 0 to N, depending on whether the mesa contains 0, 1, 2... N porous doped layers. In this example, N is equal to 2.
[0037] Each mesa M (i) is obtained by localized etching of the initial crystal stack 20 (cf. fig.5A Or fig.6A ), and comprises the N doped layers 13, 15 (from the continuous layers 23, 25) separated two by two by an intermediate insulation layer 14 (from the continuous layer 24), and, in this example, ends in the +Z direction with the epitaxial recovery layer 16 (from the continuous layer 26, cf. fig.5A ) which forms the upper face F (i) of the mesa M (i). The mesas M (i) may have been formed by one or more etching operations, for example by dry etching, so that their sides may be substantially vertical.
[0038] The different categories M (i) of mesas are distinguished from each other by porosification levels P (i) that differ from one category of mesas to another, which then allow different relaxation rates R (i). A porosification level P (i) is defined by the number of porous doped layers 13, 15 that the mesa M (i) considered comprises. The mesas M (i) of the growth substrate 10 are configured so as to form at least three different categories, including: a category M (N) where all the doped layers 13, 15 are porous, the porosification level, noted P (N), is maximum, and then allows a maximum relaxation rate R (N). The epitaxial recovery layer 16 then has a maximum effective lattice parameter ae< cre(N) substantially equal to the value of its bulk material am< cre; a category M (0) where none of the doped layers 13, 15 is porous, the porosification level, noted P (0), is minimal, and then allows a minimum relaxation rate R (0). The epitaxial recovery layer 16 then has an effective lattice parameter ae< cre(0) less than ae< cre(N), and substantially equal to the effective lattice parameter of the lower insulation layer ae< cii; a category M(n) where n doped layers 13, 15 are porous, with 1≤n <N, le niveau de porosification, noté P (n) , est intermédiaire et autorise alors un taux de relaxation intermédiaire R (n) compris entre R (0) et R (N) .The epitaxial recovery layer 16 then has an effective mesh parameter ae< cre(n) lower than the maximum value ae< cre(N) and different from the value ae< cre(0).
[0039] The relaxation rate R (i) of a mesa M (i) depends on the porosification level P (i) and the lattice parameters of the non-porous doped layers of the mesas. The relaxation rates R (i) are reflected in the fact that the epitaxial recovery layers 16 have different values of the effective lattice parameter, from one category of mesa to another. Also, the diodes D (i), produced during the same epitaxial recovery step, have different active zones, in terms of the proportion of indium incorporated in the quantum wells, from one category of diodes D (i) to another (and therefore of mesas) and will therefore be adapted to emit or detect light radiation at different wavelengths.
[0040] In the context of the invention, a doped layer 13, 15 of a mesa M (i) can be made porous during the electrochemical porosification step implemented in the method for manufacturing the growth substrate 10. The doped layer then passes from an initial so-called dense structure (initial non-porous state) to a porous structure (final porous state). This porosification results in the presence of pores which extend into the volume of the layer from its free surface (having been in contact with a liquid electrolyte), as described in the article by Griffin and Oliver 2020 cited above. The porosification of a doped layer can be adjusted according to the doping level ND thereof, and the operating conditions during the electrochemical porosification step (nature and / or concentration of the electrolyte, electrical voltage E p applied, porosification duration, etc.).The porosification of the layer can be defined by a porosity rate (ratio of the pore volume to the total volume of the layer) and by the average pore size. Note that the porous or non-porous state of a doped layer can be characterized by means of a characterization system such as a SEM (scanning electron microscopy) imaging system or a direct measurement system such as ellipsometry or ellipsoporosimetry.
[0041] Generally speaking, the electrochemical porosification reaction is a selective reaction in the sense that, for the same applied electrical voltage E p, a doped crystalline semiconductor material based on GaN will be porosified if its doping level ND is greater than or equal to a predefined minimum doping level ND,min. Otherwise, it will not be porosified and will remain intact (dense). As such, the figure 2 illustrates an example of the domain of existence of electrochemical porosification as a function of the ND doping level (here in donors) of the GaN-based crystalline material and the applied electrical voltage E p, as described in particular in document EP3840016A1.
[0042] The minimum doping level ND,min depends on the electrical voltage E p according to a decreasing function: the higher the electrical voltage E p, the lower the minimum doping level ND,min required to porosify the crystalline material. In other words, for a predefined value of the electrical voltage E p applied during the electrochemical porosification step, the crystalline material having a doping level ND lower than the minimum value N min will not be porosified (made porous) and will therefore remain intact or dense (non-porous): this material can therefore be described as “non-porosifiable”. On the other hand, for this same value E p , this same material, when it has a doping level ND at least equal to the minimum value ND,min , will be porosified (made porous) and can therefore be described as “porosifiable”.
[0043] Also, the GaN-based crystalline materials are said to be porosifiable or non-porosifiable, taking into account the same predefined value E p of the electrical voltage which is applied during the electrochemical porosification step, as a function of the same predefined minimum value ND,min of the doping level. In the context of the invention, the doped layers 13, 15 are made of a GaN-based crystalline material called “porosifiable”, while the lower insulation layer 12 and the intermediate insulation layer 14 are made of a GaN-based crystalline material called “non-porosifiable”.
[0044] The porosification of all the N doped layers of the mesas M (i), or of only one of them, makes it possible to obtain a more or less significant relaxation within the mesas M (i). Thus, a porosified doped layer becomes deformable, and will allow a partial or total relaxation of the non-porous upper layer(s), whether it is the upper doped layer 15 if it is non-porous and / or the epitaxial recovery layer 16. Also, the growth substrate 10 can have the following characteristics: in the mesas M (N) where the porosification level P (N) is maximum, the fact that all the doped layers 13, 15 have become porous therefore makes them deformable with respect to the mechanical stresses generated by the epitaxial recovery layer 16, so that the latter relaxes and presents an effective lattice parameter ae< cre(N) which can then be substantially equal to that of its bulk material am< cre: ae< cre(N) ≈ am< cre; in the mesas M (0) where the porosification level P (0) is minimal, as none of the doped layers 13, 15 has been made porous and therefore deformable, the epitaxial recovery layer 16 continues to undergo the mechanical stresses generated by the lower insulation layer 12, and therefore has an effective lattice parameter ae < cre (0) which can be substantially equal to that of the lower insulation layer 12: ae < cre (0) ≈ ae < cii; in the mesas M (n) where the porosification level P (n) is intermediate,a porosified doped layer will therefore be made deformable and will allow the non-porous upper layer (the doped layer 15 and / or the epitaxial recovery layer 16) to relax in part: if the porous layer is the lower doped layer 13, and the upper doped layer 15 is non-porous and is made of AlGaN, it therefore relaxes in part thanks to the porous doped layer 13, the epitaxial recovery layer 16 then having an effective lattice parameter ae< cre(n) which may be less than ae< cre(0). We may then have a growth substrate 10 where: ae< cre(n) < ae< cre(0) < ae< cre(N). if the porous layer is the lower doped layer 13 and the upper doped layer 15 is non-porous and is made of InGaN, or if the porous layer is the upper doped layer 15,then the epitaxial recovery layer 16 has an effective lattice parameter ae< cre(n) which may be greater than ae< cre(0). We may then have a growth substrate 10 where: ae< cre(0) < ae< cre(n) < ae< cre(N).
[0045] The support substrate 11 is made here of a non-porosifiable material, so that it remains non-porous (dense) during the porosification step, at the predefined electrical bias voltage. It may be a material inert to the electrochemical porosification reaction, such as an insulating material. It may be a GaN-based semiconductor material whose doping level is lower than the minimum porosification value ND,min (the value associated with the predefined electrical bias voltage): it may then be unintentionally doped or lightly doped. For example, the support substrate 11 may be made of sapphire, silicon, SiC, self-supporting GaN ( freestanding in English), among others. It has a thickness for example between 300µm and 1mm approximately. The support substrate 11 may be absent, the lower insulation layer 12 then being a layer several microns, tens of microns, or even hundreds of microns thick.
[0046] The lower insulation layer 12 is made of a non-porosifiable crystalline material based on GaN so that it remains non-porous (dense) during the porosification step, at the predefined electrical bias voltage. The material here is preferably GaN whose doping level is lower than the predefined minimum value ND,min. It can then be unintentionally doped or weakly doped, for example have a doping level at most equal to 5×10 17< cm -3< . This lower insulation layer 12, insofar as it is non-porosifiable because it is not intentionally doped or weakly doped, has sufficient electrical resistance to prevent the lower doped layer 13 of the M (0) mesas and that of the M (1)u from being porosified.In other words, the lower doped layer 13 of the M(0) mesas and that of the M(1)u mesas, which are not in contact with a polarization electrode, have an electrical potential sufficiently low so that the electrochemical polarization reaction does not take place.
[0047] The lower insulation layer 12 here has a thickness for example between 100nm and 6µm approximately. It was produced by epitaxy from the support substrate 11 and thus rests on and in contact with it (but an intermediate layer may be present). It may or may not be continuous in the XY plane. Furthermore, the lower insulation layer 12 has a so-called effective lattice parameter lower than that of the bulk In x Ga 1-x N of the epitaxial recovery layer 16.
[0048] Each of the doped layers 13, 15 is made of a doped, porosifiable, GaN-based crystalline semiconductor material. They are intended to be made porous or not during the electrochemical porosification step, depending on the category of the corresponding mesa, so as to obtain the desired relaxation rate. Also, the material has a doping level at least equal to the predefined minimum value ND,min. The material can be chosen from InGaN, AlGaN, InAlGaN, and / or GaN. In this example, they are all made of InGaN (non-zero indium proportion). According to a variant presented later, the upper doped layer 15 is made of AlGaN while the lower doped layer 13 is made of InGaN.
[0049] Furthermore, the doped layers 13, 15 preferably have the same type of conductivity, here an n-type doping, but they can be p-type doped. They have a thickness for example between 50nm and 1µm approximately, here equal to 800nm approximately. The doped layers 13, 15 of the same mesa M (i) can have the same thickness or a different thickness from one doped layer to another.
[0050] Each mesa M (i) comprises at least one intermediate insulation layer 14, which separates the doped layers 13, 15 two by two, along the Z axis. It makes it possible to produce the mesas M (1) by ensuring, during the porosification of one of the doped layers (for example the doped layer 15 in the mesa M (1)u ), an insulation of the other adjacent doped layer so that it is not porosified (here the doped layer 13 in the mesa M (1)u ). The intermediate insulation layer 14 is made of a crystalline, non-porosifiable semiconductor material, based on GaN. Also, the material remains non-porous (dense) during the electrochemical porosification step. The material may be selected from InGaN, AlGaN, InAlGaN, and / or GaN, and have a doping level lower than the predefined minimum value ND,min. It may thus be unintentionally doped or lightly doped, for example have a doping level at most equal to 5×10 17< cm -3< .
[0051] This intermediate insulation layer 14, insofar as it is non-porosifiable because it is not intentionally doped or weakly doped (and preferably not intentionally doped), has sufficient electrical resistance to prevent the lower doped layers 13 of the M(1)u mesas, as well as the upper doped layers 15 of the M(1)d mesas, from being porosified. In other words, with regard to, for example, the M(1)u mesas, the lower doped layers 13, which are not in contact with a polarization electrode, have a sufficiently low electrical potential due to the presence of the intermediate insulation layer 14, so that the electrochemical polarization reaction does not take place.
[0052] The intermediate insulating layer 14 is produced by epitaxy from the underlying doped layer. It is preferably in contact with the adjacent doped layers 13, 15. Its thickness is chosen to ensure, on the one hand, good insulation (sufficient electrical resistance) between the two adjacent doped layers 13, 15 during the electrochemical porosification step, and on the other hand, good transmission of mechanical stresses along the Z axis. It is less than those of the doped layers 13, 15. It is preferably between 10nm and 100nm, and preferably between approximately 10nm and 50nm.
[0053] The epitaxial recovery layer 16 is a layer of the growth substrate 10 which can be produced before the electrochemical porosification step, i.e. during the manufacture of the growth substrate 10, or can even be produced after the electrochemical porosification step, for example during the manufacture of the diode matrix D (i). It is made of a crystalline material based on InGaN which can be chosen from InGaN and InAlGaN, and is intended to allow the production of the diodes D (i) by epitaxial recovery. It is produced here by epitaxy from the upper doped layer 15.
[0054] In the case where the epitaxial recovery layer 16 is produced before the electrochemical porosification step (as part of the manufacturing process of the growth substrate 10, cf. fig.5A-5H ), it is made of a non-porous material. Also, the material remains non-porous (dense) during the electrochemical porosification step. The material then has a doping level lower than the predefined minimum value ND,min. In this example, it is made of unintentionally doped or lightly doped In x Ga 1-x N, with a non-zero proportion of indium x. Alternatively, in the case where the epitaxial recovery layer 16 is made after the electrochemical porosification step, for example during the manufacture of the diode matrix D (i) (cf. fig.6D ), regardless of whether it is made of a porosifiable material or not. Note that in the latter case, the epitaxial recovery layer can be one of the doped layers forming the semiconductor junction of a diode D (i).
[0055] The epitaxial recovery layer 16 has a thickness and a non-zero proportion of indium x such that it contributes to obtaining the desired relaxation rates R (i) for the mesas M (1) and M (2), as explained in detail below. For example, it has a thickness of approximately 200 nm and a proportion of indium x at least equal to 8%. It may have a lesser thickness, for example approximately 100 nm, and a higher proportion of indium x, for example at least approximately 12%.
[0056] Let us note here that the doped layers 13, 15 and the intermediate insulation layer 14 (and the epitaxial recovery layer 16 if applicable) each have a thickness less than its critical thickness at which there is a plastic relaxation of the mechanical stresses. The total thickness of the stack of these layers is also less than a predefined critical thickness, so as to remain in pseudomorphic stress on the lower insulation layer 12. Thus, the lower insulation layer 12 generates, in the doped layers 13, 14, 15, mechanical stresses (oriented in the XY plane) whose value is such that, before porosification, the lattice parameter at the upper face of the mesas M (i) is close to or substantially equal to the effective lattice parameter ae < cii of the lower insulation layer 12.
[0057] Since the mesas M(i) are made from the same initial crystal stack 20, each layer of a mesa M(i) is coplanar with the corresponding layers of the other mesas. Thus, the epitaxial recovery layers 16 are coplanar with each other and define upper faces that are also coplanar. The lower doped layers 13 are coplanar with each other. The same is true for the intermediate insulation layers 14 on the one hand, and for the upper doped layers 15 on the other hand.
[0058] Furthermore, each layer of a mesa M (i) has a thickness identical to that of the corresponding layers of the other mesas. Thus, the epitaxial recovery layers 16 have the same thickness between them. The same is true for the lower doped layers 13, for the intermediate layers 14, and finally for the upper doped layers 15. As indicated previously, the layers 14, 16 have a thickness less than that of the doped layers 13, 15.
[0059] In the example of the fig.1B , the growth substrate 10 comprises a lower insulation layer 12 made of GaN constrained by the sapphire substrate 11 (lattice parameter here of 3.184Â), and comprises, from bottom to top: a lower doped layer 13 made of InGaN, an intermediate insulation layer 14 made of InGaN, and an upper doped layer 15 made of InGaN, and finally an epitaxial recovery layer 16 made of In x Ga 1-x N with a thickness of approximately 200nm and a proportion of indium x equal to approximately 8%. The mesa M (0) has a minimum relaxation rate R (0) such that the epitaxial recovery layer 16 has a lattice parameter close to or substantially equal to that (3.184Å) of the lower insulation layer 12. The mesa M (N) has a maximum relaxation rate R (N) such that the epitaxial recovery layer 16 has a lattice parameter close to or substantially equal to that of the bulk In 0.08 Ga 0.92 N (approximately 3.217Å), due to the elastic deformation of the porous doped layers 13 and 15.The mesa M (1)u has an intermediate relaxation rate R (1)u so that the epitaxial recovery layer 16 has a lattice parameter between 3.184Å and 3.217Å. We therefore have ae < cre (0) < ae < cre (1)u < ae < cre (N) . Thus, the diode matrix can then comprise D (0) diodes emitting in the blue, D (1)u diodes emitting in the green, and D (N) diodes emitting in the red.
[0060] In the example of the fig.1C , the growth substrate 10 is identical to that of the fig.1B , except that the upper doped layer 15 is made of AlGaN. The mesas M (0) and M (N) have substantially the same characteristics as in the fig.1B . On the other hand, with regard to the mesa M (1)d , the porosification of the doped layer 13 makes it elastically deformable, so that the mechanical stresses of the doped layer 15 in AlGaN can then deform the porous doped layer 13, which in return will allow the doped layer 15 to relax at least partially and therefore have a lower lattice parameter than that of the lower insulation layer 12. Also, the epitaxial recovery layer 16, epitaxially grown from the AlGaN of the doped layer 15, has a lower lattice parameter than that of the mesa M (0) . We therefore have ae < cre(1)d < ae < cre(0) < ae < cre(N) . Thus, the diode matrix can then include D(1)d diodes emitting in the blue, D(0) diodes emitting in the green, and D(N) diodes emitting in the red.
[0061] Thus, the growth substrate 10 comprises mesas of different categories M (i) having different porosification levels P (i), allowing different relaxation rates R (i). Such a growth substrate 10 then makes it possible to produce a matrix of diodes D (i) adapted to emit or receive, natively, light radiation at different wavelengths. This growth substrate 10 is obtained from an original crystalline stack 20 made of N doped layers 13, 15 separated two by two by an intermediate insulation layer 14, of which only some of the doped layers are made porous during the same electrochemical porosification step, thanks to the presence of the intermediate insulation layer 14.This intermediate insulation layer 14, by the fact that it is made of a non-porosifiable material (because it is not intentionally doped or weakly doped), makes it possible, by its electrical resistance, to prevent the electrochemical porosification reaction from taking place in the adjacent doped layer that is not desired to be porosified. The different categories of mesas M (i) are thus obtained, without it being necessary to carry out steps of localized implantation of dopants as in the manufacturing method of the prior art mentioned above.
[0062] THE figures 3A à 3C illustrate, in top view ( fig.3A ), in cross section ( fig.3B ), and in perspective ( fig.3C ), a growth substrate 10 similar to that of the fig.1B , which has several M(0) mesas, several M(1)u mesas and several M(2) mesas. In this example, the M(1)u mesas and the M(2) mesas are separated by the M(0) mesas along the X axis. The M(0), M(1)u and M(2) mesas are respectively aligned along the Y axis. Other arrangements are of course possible.
[0063] The upper doped layer 15 of the M(1)u mesas is here continuous and extends continuously in the XY plane to connect together all the M(1)u mesas of the growth substrate 10. In other words, each porous doped layer 15 of the M(1)u mesas is a part of the same continuous porous layer which extends from one M(1)u mesa to the other. The same is true for the upper and lower doped layers of the M(2) mesas which extend continuously in the XY plane to connect together the M(2) mesas of the growth substrate 10.
[0064] The epitaxial recovery layers 16 remain distinct from one M(1)u mesa to another in the XY plane. The same is true for the M(2) mesas. A trench 2 which opens onto the lower insulation layer 12 separates the M(0) mesas from the M(1)u mesas on the one hand, and from the M(2) mesas on the other hand. This same trench 2 separates the M(0) mesas from each other in the XY plane.
[0065] The upper doped layer 15 of the mesas M(1)u and M(2) comprises a notch thus defining an upper part having substantially identical dimensions in the XY plane as the epitaxial recovery layer 16, and a lower part having larger dimensions. The notch can be used to deposit an electrode 3 there, this electrode 3 being connected to an electric generator during the electrochemical porosification step (e.g. to the anode of the generator). This notch and the electrode 3 can be present at all the mesas M(1)u and M(2), or only at those located at the edge of the growth substrate 10.
[0066] In addition, the lower doped layer 13 of the mesas M (2) also comprises a notch thus defining an upper part having substantially identical dimensions in the XY plane as the lower part of the upper doped layer 15, and a lower part having larger dimensions. The notch is here also used so that an electrode 3 is deposited there, this electrode 3 being connected to the electric generator (here, to the anode also). This notch and the electrode 3 can be present at all the mesas M (2), or only at those located at the edge of the growth substrate 10.
[0067] Note that these notches may be absent, and the anode of the generator may be electrically connected to a lateral surface of the upper doped layer 15 of the mesas M(1)u and M(2) and to a lateral surface of the lower doped layer 13 of the mesas M(2).
[0068] THE figures 4A et 4B are schematic and partial views, in cross-section ( fig.4A ) and in perspective ( fig.4B ), of a growth substrate 10 similar to that of the fig.1C , since it has several mesas M (0), several mesas M (1)d and several mesas M (2).
[0069] In this example, the growth substrate 10 is similar to that of the fig.3A , and is essentially distinguished from it in that the lower porous doped layer 13 of the mesas M (1)d is continuous with the also porous one of the mesas M (2). In other words, the mesas of a category M (n) comprise a porous doped layer which is a part of the same continuous porous layer which extends into a mesa of a different category M (n+1).
[0070] Thus, while a trench 2 which opens onto the lower insulation layer 12 separates the mesas M (0) from the mesas M (1)d and M (2) in the XY plane, another less deep trench 2.1, opening onto the lower doped layer 13, separates the mesas M (1)d from the mesas M (2) in the XY plane at the level of their upper doped layer 15. Thus, the same lower doped layer 13 of the mesas M (1)d and M (2) can be in contact with the same electrode 3 connected to the anode of the electric generator.
[0071] THE figures 5A à 5H illustrate different steps of a method of manufacturing a growth substrate 10 similar to that of the fig.1B , then of the optoelectronic device 1. In this example, the diodes are light-emitting, and the optoelectronic device 1 is a micro-screen with native RGB emission.
[0072] In reference to the fig.5A , first of all a crystalline stack 20 is provided comprising, on a support substrate 11 which extends in the main plane XY: a lower continuous insulation layer 22, a lower continuous doped layer 23, an intermediate continuous insulation layer 24, an upper continuous doped layer 25, and here a continuous epitaxy recovery layer 26. These layers extend in the XY plane continuously over the entire extent of the support substrate 11. The different layers are obtained by successive epitaxy steps from the support substrate 11.
[0073] The lower insulation layer is made of a non-porosifiable crystalline material based on GaN, here in GaN not intentionally doped. The lower doped continuous layer 23 like the upper doped continuous layer 25 are made of a porosifiable crystalline material based on GaN, here in In x Ga 1-x N, with a proportion of indium x which is preferably between 0% and 15%. In this example, the proportion of indium x of the layers 23 and 25 is non-zero. The InGaN is n-type doped between 3×10 8< cm -3< and 1.5×10 9< cm -3< , for example equal to approximately 6×10 8< cm -3<. The thickness is here between 50nm and 1µm, for example equal to approximately 800nm. The continuous intermediate insulation layer 24 and the continuous epitaxial recovery layer 26 are made of a non-porosifiable crystalline material based on GaN, here in InGaN (in this example, the proportion of indium x is non-zero) not intentionally doped or lightly doped.
[0074] In reference to the fig.5B , here a localized etching of the continuous epitaxial recovery layer 26 is carried out to form nucleation pads (forming the epitaxial recovery layers 16), distinct from each other in the XY plane, intended for the production of the diodes D (i), and opening into the upper doped continuous layer 25 (here forming a continuous upper part and a continuous lower part). The etching can in particular be carried out by an ICP-RIE plasma type process in chlorine gas. This first step, optional, makes it possible to produce the epitaxial recovery layers 16 of the mesas M (0), M (1) and M (2), as well as the upper and lower parts of the upper doped continuous layer 25 of the mesas M (1) and M (2).
[0075] In reference to the fig.5C , a localized etching is then carried out of the upper doped continuous layer 25, of the intermediate continuous layer 24, and of the lower doped continuous layer 23, to open into the lower continuous layer 22. One or more trenches 2 are thus formed making it possible to isolate in the XY plane the mesas M (0) from each other and from the mesas M (1) and M (2), and to isolate the mesas M (1) from the mesas M (2).
[0076] The mesas M (1) here comprise an upper doped layer 15, intended to be made porous, common from one mesa to another, and are also connected to each other by this same upper doped layer 15 (as on the fig.3A ). Similarly, the mesas M (2) here comprise upper 15 and lower 13 doped layers, intended to be made porous, common from one mesa to the other, and are connected to each other by these same upper 15 and lower 13 doped layers.
[0077] In this example, an electrode 3 is then deposited on and in contact with the upper doped layer 15 of the mesas M (1). This electrode 3 can extend over all the mesas M (1), or over only the mesas M (1) located at the edge of the growth substrate 10. An electrode 3 is also produced on and in contact with the upper doped layer 15 of the mesas M (2), and another electrode 3 on and in contact with the lower doped layer 13 of the mesas M (2). These electrodes 3 can be located in different ways, as for the electrode 3 of the mesas M (1).
[0078] In reference to the fig.5D , an electrochemical porosification of the upper doped layer 15 of the mesas M (1)u is then carried out, and of the upper 15 and lower 13 doped layers of the mesas M (2), simultaneously. The upper 15 and lower 13 doped layers of the mesas M (0) are not made porous during this step because they are not electrically connected to the electric generator. In addition, the lower doped layer 13 of the mesas M (1)u is not made porous because the intermediate insulation layer 14, by its electrical resistance, prevents the electrochemical porosification reaction from taking place in this lower doped layer 13 (which is not desired to be porosified).
[0079] To do this, the growth substrate 10 is immersed in a liquid electrolyte, the doped layers to be made porous being connected here to the anode of the electric generator. The growth substrate 10 thus forms a working electrode. A counter-electrode, here a platinum grid with a large deployed surface and facing the surface of the working electrode, is immersed in the electrolyte, and is connected to the cathode of the electric generator. The electric generator applies an electric voltage E p whose value has been predetermined, which leads to porosification of the layers concerned, and therefore to a different relaxation of the different mesas.More precisely, the mesas M (0) have no porous layer and have the relaxation rate R (0) which remains identical before and after the electrochemical porosification step; the mesas M (2) have their upper 15 and lower 13 doped layers which are made porous, which leads to a maximum relaxation rate R (2), here completely relaxing the epitaxial recovery layers 16; and the mesas M (1) have their upper doped layer 15 only which is made porous, which leads to a relaxation rate R (1) between and different from R (0) and R (2).
[0080] The liquid electrolyte can be acidic or basic, and can be oxalic acid. It can also be KOH, HF, HNO 3 , NaNO 3 , H 2 SO 4 or a mixture thereof. A mixture of oxalic acid and NaNO 3 can also be used. The electrical voltage applied between the anode and the cathode can be, for example, between 1V and 100V. It can be applied for a period ranging from a few seconds to a few hours. When there is no more current, the electrochemical reaction stops and the porosification of the corresponding doped layers is carried out.
[0081] A growth substrate 10 is thus obtained, comprising mesas M (i) having different relaxation rates R (i), and formed from the same original crystalline stack 20. This relaxation of mechanical stresses differentiated from one category of mesas to another is obtained during the same electrochemical porosification step, without it being necessary to achieve different doping levels from one category of mesa M (i) to another. These mesas M (i) all have an epitaxial recovery layer 16 in In x Ga 1-x N with the same proportion of indium x, but with a different relaxation depending on whether the different categories are considered. They are therefore suitable for the production by epitaxy of a matrix of diodes D (i) making it possible to emit or receive light radiation at different wavelengths.
[0082] In reference to the fig.5E à 5H , the diode matrix D (i) is then manufactured by epitaxy growth from the mesas of the growth substrate 10. In this example, the diodes are light-emitting. Here, diodes D (0) are produced from the mesas M (0), diodes D (1) from the mesas M (1), and diodes D (2) from the mesas M (2).
[0083] In reference to the fig.5E à 5G , after having removed the electrodes 3 for example by selective chemical etching, a growth mask 4 is first produced on the growth substrate 10, so as to cover it entirely except at the level of the upper surfaces of the epitaxial recovery layers 16.
[0084] First of all, we deposit (cf. fig.5E ), conformably, a continuous thin layer 4 made of an electrically insulating material such as a silicon nitride, for example a thin layer of 80nm of SiN deposited by plasma-enhanced chemical vapor deposition (PECVD). This insulating thin layer 4 thus completely covers the mesas M (i) as well as the free surface, located between the mesas M (i), of the lower insulating layer 12, and has a substantially constant thickness.
[0085] We then deposit (cf. fig.5F ) a thick filling layer 5, for example made of a polymer such as a lithography resin, on the thin insulating layer 4 so as to cover the mesas M (i). This thick layer 5 is then thinned, for example by dry etching under O 2 plasma, until the upper surface of the thin insulating layer 4 located above the epitaxial recovery layers 16 is free.
[0086] Finally, we realize (cf. fig.5G ) openings opening onto the upper surface of the epitaxial recovery layers 16. For this, the parts made free of the thin insulating layer 4 are selectively etched, for example by etching under fluorine plasma. The thick layer 5 can then be removed, for example, by dissolution in a solvent (as illustrated in the fig.5H ). A growth mask (the thin insulating layer 4) was thus produced, which covers the surface of the mesas M (i) and the surface of the lower insulating layer 12 located between the mesas, except for the upper surface of the epitaxial recovery layers 16. This is a self-aligned process where no photolithography step was used. However, other processes can be used.
[0087] In reference to the fig.5H , the diodes D (i) are produced simultaneously, by epitaxial recovery from epitaxial recovery layers 16 of the different mesas M (i). We thus form: diodes D (0), from mesas M (0), adapted to emit at a main wavelength λ 0 , for example a blue light whose wavelength λ 0 is for example between 440nm and 490nm approximately; diodes D (1), from mesas M (1), adapted to emit at a main wavelength λ 1 , for example a green light whose wavelength λ 1 is for example between 495nm and 560nm approximately; and diodes D (2), from mesas M (2), adapted to emit at a main wavelength λ 2 , for example a red light whose wavelength λ 2 is for example between 600nm and 650nm approximately.
[0088] This is possible because the 16 epitaxial recovery layers of the mesas M(0), M(1) and M(2) have a different effective lattice parameter from one category of mesas to another, due to the different relaxation rates R(0), R(1) and R(2). Also, the incorporation of indium in the diodes, and in particular in the quantum wells of the active layers, depends in fact on the effective lattice parameter (and therefore the relaxation rate) of the 16 epitaxial recovery layers of the different mesas. The higher the effective lattice parameter of a 16 epitaxial recovery layer, the greater the main wavelength of the corresponding diode will be.
[0089] In this example, the epitaxial recovery layer 16 of the M(0) mesas has the lowest relaxation rate R(0), so that it has an effective lattice parameter close to that of the lower insulation layer 12 in GaN, which leads to the D(0) diodes emitting here in the blue. In contrast, the epitaxial recovery layer 16 of the M(2) mesas has the highest relaxation rate R(2), so that it has an effective lattice parameter close to that of the bulk In x Ga 1-x N (the proportion of indium can then be between 10% and 20%, for example equal to 15%), thus leading to the D(2) diodes emitting in the red. Between these two situations, the epitaxial recovery layer 16 of the mesas M (1) has the relaxation rate R (1) intermediate between and different from R (0) and R (2), so that the diodes D (1) can then emit in the green.
[0090] Diodes D (i) comprise a minima two doped layers 31, 33, one of n-type and the other of p-type, and an intercalary active layer 32 comprising quantum wells. The doped layers 31, 33 and the active layer 32 may be multilayers (thus the quantum wells are conventionally located between barrier sub-layers) and comprise other layers or sub-layers such as an electron blocking layer.
[0091] For example, to obtain diodes D (2) emitting in the red, diodes D (1) emitting in the green, and diodes D (0) emitting in the blue, each diode D (i) can have the following stack (epitaxed from the epitaxy recovery layer 16), from bottom to top: a thick layer (or substrate layer) made of InGaN, with a proportion of indium of between approximately 10% and 20%, for example equal to 15%, doped n-type, and with a thickness of between 50nm and 200nm; a multilayer based on n-type doped InGaN with a thickness of approximately 350nm, formed of an alternation of 15 pairs of a 22nm sub-layer of In 0.15 Ga 0.85 N and a 1.8nm sub-layer of GaN, or even a buffer layer of 400 to 500nm of n-doped In 0.15 Ga 0.85 N; an active layer comprising multiple quantum wells formed of 5 pairs of In 0.40 Ga 0.60 N / In 0.15 Ga 0.85 N of thicknesses 2-3nm and 5-8nm; a 10nm spacer layer of unintentionally doped In 0.03 Ga 0.97 N; a 20nm layer of AIN or Mg-doped GaN; a 125nm layer of Mg-doped InGaN with an indium proportion of approximately 10 to 15%; a 25n layer of p-type overdoped InGaN with the same indium proportion of approximately 10 to 15% as the underlying layer.
[0092] Furthermore, the method of manufacturing the optoelectronic device 1 also includes a step of producing polarization electrodes for the diodes D (i). This step is conventional and is not described here.
[0093] An optoelectronic device 1 is thus obtained, the diodes D (i) of which are adapted here to emit natively at different wavelengths, here in the three RGB colors, this thanks to the growth substrate 10 which was produced from a single electrochemical porosification step without having resorted to several steps of localized implantation of dopants, and which made it possible to produce the diodes D (i) from a single epitaxy resumption step.
[0094] THE figures 6A à 6D illustrate steps of a method for manufacturing a growth substrate 10 and then the diode matrix D (i). This method differs from that of fig.5A à 5H essentially in that the epitaxial recovery layer 16 of the mesas M (i) is produced during the manufacture of the diodes D (i) therefore after the electrochemical porosification step.
[0095] In reference to the fig.6A , we first produce the crystalline stack 10. The continuous layers 22, 23, 24 and 25 are identical to those of the fig.5A . However, it does not include the continuous epitaxial recovery layer 26.
[0096] In reference to the fig.6B , the mesas M (i) are then produced by localized etching of the crystal stack 10, and the desired doped layers are porosified. This gives the mesas M (0), M (1)u and M (2). Note here that the porous layers have become elastically deformable. They will allow the relaxation of the epitaxial recovery layers 16 which will be produced subsequently (and therefore the mesas M (i)).
[0097] In reference to the fig.6C , the electrodes 3 are removed, then the thin insulating layer 4 is deposited, then the thick filling layer 5. This thick layer 5 is then thinned until the upper surface of the thin insulating layer 4 located above the upper face of the doped layers 15 of the mesas M (i) is free.
[0098] In reference to the fig.6D , openings are made so as to free the upper face of the doped layers 15 of the mesas M (i). The thick layer 5 can then be removed. The growth substrate 10 has thus been manufactured. Here, the epitaxial recovery layer 16 is not yet deposited on each of the mesas M (i).
[0099] Finally, the different diodes D (i) are produced simultaneously. For this, a thin layer based on GaN, and preferably InGaN with an indium proportion of approximately 1%, with a thickness of between approximately 10 and 100nm, can be produced by epitaxy. This thin layer is produced on and in contact with the doped layers 15 of the mesas M (i), and makes it possible to seal the pores opening at the upper face of the porous doped layers 15. Then, the epitaxy recovery layer 16 can be produced by epitaxy at the level of each mesa M (i). This layer 16 can have a thickness of approximately 200nm and an indium proportion of approximately 8%. It then causes the deformation of the porous layers of the mesas M (1) and M (2), which in turn allows the layer 16 to relax. Layers 31, 32, 33 of the diodes are then produced. Note here that layer 31 can then act as an epitaxial recovery layer.
[0100] Particular embodiments have just been described. The scope of the invention is defined by the claims.
Claims
1. Growth substrate (10), adapted to produce by epitaxy an array of diodes based on InGaN, comprising: ∘ a lower insulation layer (12) made of a non-porous crystalline material based on GaN; ∘ mesas M(i), where i ranges from 0 to N, made of crystalline materials based on GaN, resting on and in contact with the lower insulation layer (12), and each comprising N doped layers (13, 15), where N≥2, separated pairwise by an intermediate insulation layer (14) made of a non-porous material, and each having a free upper face adapted for producing a diode of the array by epitaxy; the mesas being configured according to at least three different categories including: • a category of mesas called M(N) where the N doped layers (13, 15) are porous; • a category of mesas called M(0) where none of the doped layers (13, 15) are porous; • a category of mesas called M(n) where n doped layers (13, 15) are porous, where 1≤n<N.
2. Growth substrate (10) according to claim 1, wherein each mesa M(i) includes an epitaxial regrowth layer (16) resting on an upper doped layer (15) among the N doped layers (13, 15), made of a non-porous crystalline material based on InGaN, the mesh parameter amcre of the relaxed material of which is greater than the effective mesh parameter aecii of the lower insulation layer (12): ∘ the epitaxial regrowth layer (16) of each mesa M(N) having a maximum mesh parameter aecre(N); ∘ the epitaxial regrowth layer (16) of each mesa M(0) having a mesh parameter aecre(0) less than aecre(N), ∘ the epitaxial regrowth layer (16) of each mesa M(n) having an intermediate mesh parameter aecre(n) less than aecre(N) and different from aecre(0).
3. Growth substrate (10) according to claim 1 or 2, wherein the intermediate insulation layer (14) of each mesa has a thickness less than that of the adjacent doped layers (13, 15).
4. Growth substrate (10) according to claim 3, wherein the intermediate insulation layer (14) of each mesa has a thickness between 10nm and 100nm.
5. Growth substrate (10) according to any one of claims 1 to 4, wherein the lower insulation layer (12) and the intermediate insulation layer (14) have a doping level at most equal to 5x1017 cm-3.
6. Growth substrate (10) according to any one of claims 1 to 5, wherein the doped layers (13, 15) are n-type doped.
7. Growth substrate (10) according to any one of claims 1 to 6, wherein the lower doped layers (13) of the mesas M(i) are made of the same material and have the same thickness from one mesa to another; the intermediate insulation layers (14) of the mesas M(i) are made of the same material and have the same thickness from one mesa to the other; and the upper doped layers (15) of the mesas M(i) are made of the same material and have the same thickness from one mesa to another.
8. Optoelectronic device (1) comprising: a growth substrate (10) according to any one of the preceding claims; and an array of diodes D(i) based on InGaN, grown epitaxially from the mesas of the growth substrate (10), the diodes being adapted to emit or detect a light radiation at different wavelengths, the wavelength being different from one category of mesas M(i) to another.
9. Optoelectronic device 1 according to claim 8, forming an RGB microscreen where the diodes D(i) are light-emitting diodes configured to emit a light radiation at least in blue and red.
10. Method for manufacturing a growth substrate (10) according to any one of claims 1 to 7, comprising the following steps: ∘ determining a value of an electrical voltage to be applied during a subsequent electrochemical porosification step; ∘ producing a crystalline stack (20), comprising, from bottom to top: a continuous lower insulation layer (22) made of a crystalline material based on GaN and non-porosifiable at said predetermined value of the electrical voltage to be applied; N continuous doped layers (23, 25), where N≥2, made of crystalline materials based on GaN and porosifiable at said predetermined value of the electrical voltage to be applied; at least one continuous intermediate insulation layer (24), separating the continuous doped layers (23, 25) pairwise, made of a crystalline material based on GaN and non-porosifiable at said predetermined value of the electrical voltage to be applied; ∘ localised etching of the crystalline stack (20), so as to form said mesas M(i); ∘ producing several electrodes (3), in contact with the doped layers to be porosified (13, 15) according to the different categories of mesas M(i); ∘ simultaneous electrochemical porosification of said doped layers to be porosified (13, 15), by applying to the doped layers to be porosified (13, 15) the predetermined value of the electrical voltage.
11. Manufacturing method according to claim 10, wherein the material of the lower continuous insulation layer (22) and the material of the intermediate continuous insulation layer (24) have a doping level less than a predefined minimum value from which they can be porosified given the predetermined value of the electrical voltage applied during the porosification step.
12. Manufacturing method according to claim 10 or 11, comprising the following steps: ∘ following the porosification step, removing the electrodes (3), following by conformal deposition of a thin insulating layer (4) covering the mesas; ∘ depositing a thick filler layer (5), filling the spaces between the mesas, and thinning the thick filler layer (5) so as to free an upper portion of the thin insulating layer (4) covering an upper surface of the mesas M(i); ∘ selective etching of the upper portion of the thin insulating layer (5), selectively at the mesas M(i), freeing the upper surface thereof.
13. Manufacturing method according to any one of claims 10 to 12, wherein the crystalline stack (20) comprises a continuous epitaxial regrowth layer (26) based on InGaN, relying on an upper continuous doped layer (25) among the N continuous doped layers (23, 25).
14. Manufacturing method according to any one of claims 10 to 12, wherein, after the porosification step, an epitaxial regrowth layer (16) based on InGaN is produced on an upper doped layer (15) among the N doped layers (13, 15) of each mesa M(i).
15. Method for manufacturing an optoelectronic device according to any one of claims 8 and 9, comprising the following steps: ∘ manufacturing the growth substrate by the method according to any one of claims 10 to 14; then ∘ producing an array of diodes D(i) by epitaxy from the mesas M(i) of the growth substrate (10), the diodes then being adapted to emit or detect a light radiation at different wavelengths, the wavelength being different from one category of mesas M(i) to another.