Sam photodiode with multiplication of a single type of carrier in a periodic multilayer region
11322637 · 2022-05-03
Assignee
Inventors
Cpc classification
International classification
H01L31/107
ELECTRICITY
Abstract
An avalanche photodiode including an absorption region, a collection region and a multiplication region between the absorption region and the collection region that performs a carrier multiplication by impact ionisation of a single type of carrier. The multiplication region includes a plurality of multilayer structures where each multilayer structure includes, from the absorption region to the collection region, an acceleration layer having a first energy band gap then a multiplication layer having a second energy band gap. The first energy band gap is greater than the second energy band gap.
Claims
1. An avalanche photodiode including an absorption region, a collection region and a multiplication region between the absorption region and the collection region, wherein the multiplication region performs a carrier multiplication by impact ionisation of a single type of carrier, wherein the multiplication region includes a plurality of multilayer structures, and wherein, from the absorption region to the collection region, each multilayer structure includes a first layer having a first energy band gap then a second layer having a second energy band gap, the first energy band gap being greater than the second energy band gap, wherein from the absorption region to the collection region, each multilayer structure includes a layer with negative energy band gap gradient between the first layer and the second layer and a layer with positive energy band gap gradient after the second layer.
2. The avalanche photodiode according to claim 1, wherein the first and second energy band gaps and the thicknesses of the first and second layers decrease from one multilayer structure to the other from the absorption region to the collection region.
3. The avalanche photodiode according to claim 1, wherein the first layer of the multilayer structure in contact with the absorption region is thicker than the first layer of the or the other multilayer structures.
4. The avalanche photodiode according to claim 1, wherein the negative energy band gap gradient goes from the first energy band gap to the second energy band gap.
5. The avalanche photodiode according to claim 1, further including an acceleration layer of carriers of said single type between the multiplication region and the collection region.
6. The avalanche photodiode according to claim 1 wherein the layer with positive energy band gap gradient is thicker than the layer with negative energy band gap gradient.
7. The avalanche photodiode according to claim 1, wherein the positive energy band gap gradient goes from the second energy band gap to the first band gap.
8. The avalanche photodiode according to claim 1, wherein the absorption region has an energy band gap that decreases in the direction of the multiplication region.
9. The avalanche photodiode according to claim 1, wherein in each multilayer structure the first layer has a carrier multiplication rate per micrometre having a first saturation value after a first dead space distance, the second layer has a carrier multiplication rate per micrometre having a second saturation value after a second dead space distance and the first layer has a thickness that is at least equal to the second dead space distance and less than the first dead space distance.
10. The avalanche photodiode according to claim 9, wherein in each multilayer structure the second layer has a thickness greater than a multiplication distance corresponding to the inverse of the second saturation value.
11. The avalanche photodiode according to claim 9, wherein in each multilayer structure the thickness of the second layer is less than the second dead space distance.
12. The avalanche photodiode according to claim 11, wherein each multilayer structure has a thickness less than the first dead space distance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other aspects, aims, advantages and characteristics of the invention will become clearer on reading the following detailed description of preferred embodiments thereof, given by way of example and non-limiting, and made with reference to the appended drawings in which:
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DETAILED DESCRIPTION OF PARTICULAR EMBODIMENTS
(10) The invention relates to a SAM-APD photodiode with separate absorption and multiplication zones that performs carrier multiplication by impact ionisation of a single type of carrier (so-called SCM, Single Carrier Multiplication). “Carrier multiplication by impact ionisation of a single type of carrier” is taken to mean that the multiplication by impact of one of the types of carrier (holes for example) is negligible vis-à-vis the multiplication by impact of the other type of carrier (electrons in this example), that is to say that the ratio between the two multiplication rates is greater than 50, preferentially 100, or even 1000.
(11) In the remainder of the description, the photodiode is based on mercury cadmium telluride, that is to say made of a material including tellurium and at least one element selected from cadmium and mercury and complying with the following formulation Cd.sub.xHg.sub.1-xTe with the value x corresponding to the proportion of cadmium with respect to mercury that is comprised between 0 and 1, 0 and 1 included. Nevertheless, the invention is not only limited to photodiodes made from mercury-cadmium telluride and also encompasses any type of structure of which the design makes it possible to obtain a dominant multiplication for one type of carrier, for example by resorting to indium arsenides-antimonides of the type InAs.sub.1-xSb.sub.x.
(12) With reference to
(13) The photodiode is for example produced by means of growth by molecular beam epitaxy of the material CdHgTe, the cadmium composition of which may be modulated in order to vary the energy band gap.
(14) The photodiode includes an absorption region 1, a collection region 3 and a multiplication region 2 between the absorption region and the collection region. The multiplication region 2 performs a carrier multiplication by impact ionisation dominant for electrons (i.e. the multiplication of holes is negligible vis-à-vis the multiplication of electrons).
(15) The absorption region 1 has a first face on which the light is incident. This region is characterised by a P-type of conductivity and a doping level typically greater than 10.sup.16 cm.sup.−3. The thickness and the cadmium composition of this region are adapted to the targeted wavelength for each application. To detect photons of 1.55 μm wavelength, the thickness is typically of the order of 1.5 to 3 μm and the level of cadmium x is typically greater than 0.3, for example greater than 0.45.
(16) The electrons generated in the absorption region 1 are transported by drift or diffusion to the multiplication region 2. The multiplication region 2 is characterised by a low doping level compared to the absorption region, typically less than 10.sup.16 cm.sup.−3, in order to establish a uniform electric field through this region.
(17) The collection region 3, with which the multiplication region is in direct contact in the example of
(18) The collection region 3 is covered with a passivation layer 4 used to protect the photodiode from an electrical degradation induced by a mechanical or chemical mechanism. A metal pad 5 is localised in and around a hole in the passivation layer 4 in order to have an electrical contact, ideally ohmic, with the collection region 3. An electrical contact (not represented) is also made with the absorption region 1 in order to apply a bias between the absorption and collection regions through the multiplication region. A limitation of the active surface of the multiplication and collection regions may be achieved by means of an etching that defines a mesa shaped pillar and/or by means of a localised formation of the collection layer produced, for example, by ion implantation.
(19) According to the invention, the multiplication region 2 includes a plurality of multilayer structures 20. Also taking as reference
(20) During the operation of the photodiode, i.e. when it is subjected to a reverse bias, such as a bias comprised between 10V and 15V, for example 13V, the first layer 21 forms a carrier acceleration layer that increases the energy of the electrons without initiating electron multiplication events whereas the second layer forms a multiplication layer within which are localised the electron multiplication events. The multiplication region according to the invention with a plurality of multilayer structures thus enables an important localisation of multiplication events within the second layers 22. In such a way, the multiplication hazard is reduced and consequently the value of the excess noise factor is decreased.
(21) In a possible embodiment, the variation in gap between the first and second layers is not instantaneous and each multilayer structure 20 includes, from the absorption region 1 to the collection region 2, a layer g.sub.12 with negative energy band gap gradient between the first layer 21 and the second layer 22 and a layer g.sub.21 with positive energy band gap gradient after the second layer 22. The negative energy band gap gradient goes from the first energy band gap to the second energy band gap.
(22) In a possible embodiment, the positive energy band gap gradient goes from the second energy band gap to the first energy band gap, in such a way that the multilayer structures have the same energy band gaps ΔE.sub.21 and ΔE.sub.22 within the first and second layers.
(23) In an alternative embodiment, the first and second band gaps as well as the thicknesses of the first and second layers decrease from one multilayer structure to another from the absorption region to the collection region. The multiplication region thus has a greater gap and thicknesses on the absorption region side than on the collection region side. This alternative makes it possible to reduce the generation of dark current at the start of multiplication on the absorption region side. This alternative may be used to obtain an important gain while reducing, compared to a multiplication region in the form of a layer having a homogeneous cadmium content, the thickness of the multiplication region as well as the reverse bias value.
(24) In a possible embodiment making it possible to guarantee transport by drift and a rapid response time of the photodiode, the layer g.sub.21 with positive band gap gradient is thicker than the layer g.sub.12 with negative band gap gradient. The negative gradient is thus steeper than the positive gradient, and the positive gradient increases gradually over a distance corresponding to the thickness e.sub.21 of the layer g.sub.21, which makes it possible to obtain a nominal operating electric field E.sub.f greater than ΔE.sub.g/e.sub.21 (where ΔE.sub.g corresponds to the difference in energy between the valence and conduction bands) and thus to ensure a barrier-free transport of carriers for the electrons.
(25) A model describing the gain and excess noise in photodiodes based on CdHgTe has been proposed in the article of J. Rothman et al. entitled “History-Dependent Impact Ionization Theory Applied to HgCdTe e-APDs”, Journal of Electronic Materials, n° 40, page 1757, 2011. This model is used hereafter to describe an advantageous embodiment of a photodiode according to the invention, it being understood that this description does not depend on the exactitude of this model but on its main parameters namely a dead space (i.e. the minimum distance that a newly generated electron must travel in order to acquire sufficient energy to create a new impact ionisation event) and a saturation value of the impact ionisation coefficient after the dead space.
(26) In order to obtain low excess noise, less than 2, this article indicates that it is indispensable to use an impact ionisation model that depends on the history of the carrier. Thus, the impact ionisation coefficient α in a position x must take account of a dead space distance x.sub.ds after the final multiplication event that has been initiated by or has generated a carrier at a position x′ and this article provides the following equation:
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where erf designates the error function, α.sub.h corresponds to the saturation value of the impact ionisation coefficient after the dead space and γ is a variable that expresses an uncertainty on the dead space by impacting the impact ionisation around the dead space distance. In
(28) The variation in the dead space distance x.sub.ds and the saturation value α.sub.h of the impact ionisation coefficient after the dead space appear to be determinants for correctly modelling the variation in the gain and excess noise factor as a function of the reverse bias applied to the photodiode. Still in the same article, it has been demonstrated that a good description of the gain may be obtained using a Shockley model of parameters a and b to express the change in the impact ionisation coefficient as a function of the electric field E:
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The variation in the dead space distance x.sub.ds is for its part described by x.sub.ds=ds/E with for example ds=0.8 and γ=0.3.
(30) Thus, in each multilayer structure of the photodiode according to the invention, the first layer 21 has a carrier multiplication rate per micrometre having a first saturation value α.sub.h1 after a first dead space distance x.sub.ds1 and the second layer 22 has a carrier multiplication rate per micrometre having a second saturation value α.sub.h2 after a second dead space distance x.sub.ds2. These values α.sub.h1, α.sub.h2, x.sub.ds1 and x.sub.ds2 vary as a function of the energy band gaps ΔE.sub.21 and ΔE.sub.22 and the operating electric field E.sub.f.
(31) In an advantageous embodiment of the invention, the hazard on the dead space is reduced, or even eliminated, in order to reduce the excess noise factor value. To do so, the probability of multiplication in the first layer 21 of the multilayer structures 20 is minimised by playing on its thickness to obtain a quasi-deterministic dead space (i.e. γ≈0) and localise the multiplication events within the second layer 22. To this end, in each multilayer structure, the first layer 21 has a thickness e.sub.1 less than the first dead space distance x.sub.ds1 and at least equal to the second dead space distance x.sub.ds2: x.sub.ds2≤e.sub.1<x.sub.ds1.
(32) And, in each multilayer structure 20, it is possible to provide that the second layer 22 has a thickness e.sub.2 greater than a multiplication distance 1/α.sub.h2 corresponding to the inverse of the second saturation value, preferably at least two times greater than said multiplication distance. In such a way, a probability of ionisation by impact in the second layer greater than 70%, preferably greater than 90%, is guaranteed.
(33) In an alternative embodiment, the thickness e.sub.2 of the second layer is controlled to limit the occurrence of several multiplications per carrier while maintaining a high probability of ionisation by impact. The optimisation described above of the thickness of the first layer 21 means that it is highly probable that the probability of ionisation by impact for the first multiplication in the second layer 22 is considerably increased after the passage in the first layer 21. This increase is also stimulated by the passage between the high gap material in the first layer and the low gap material in the second layer 22, which induces an additional excess energy. The result is an increase in the saturation value α.sub.h2 compared to that observed for a multiplication region with homogeneous cadmium content. This increase may be exploited to limit the thickness e.sub.2 of the second layer in order to minimise the probability of producing a second multiplication event in the same layer while maintaining a high probability of ionisation in this layer.
(34) It is thus possible to provide that in each multilayer structure the thickness e.sub.2 of the second layer 22 is less than the second dead space distance x.sub.ds2. With a multiplication probability close to unity for each electron entering into a second layer, the multiplication hazard is even further reduced. It will be noted that the reduction in the thickness e.sub.2 of the second layer 22 also makes it possible to reduce the probability of inducing a multiplication event in the following first layer. And this reduction in the thickness e.sub.2 may make it possible to define an elementary structure of which the total thickness e.sub.t is less than the dead space distance x.sub.ds1 of the first layer.
(35) In
(36) In
(37) TABLE-US-00001 ds (V) γ a (V.sup.−1) b (kV/cm) x.sub.ds= ds/E (nm) 1/α.sub.h (nm) First 1.31 0.3 2.8 59 205 140 layer 21 Second 0.83 0.3 4.4 38 130 59 layer 22
(38) In
(39) As has been seen previously, it is probable that the saturation value of the impact ionisation coefficient in a second layer according to the invention is greater than the expected value in a multiplication region with homogeneous cadmium content. In
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(41) It will be noted that at high bias, the estimation of the gain saturates what is induced by the absence of taking into account a double multiplication per second layer in the model used. Yet, at a bias value greater than 14V, this double multiplication effect becomes important and contributes to an increase in the gain and excess noise. Thus, the model used is no longer valid in the rectangular zones of
(42) It may be deduced from
(43) In a possible embodiment of the invention, the thickness of the first layer in the first multilayer structure on the absorption region side is increased, which makes it possible to benefit from a higher impact ionisation coefficient in the second layer of this first multilayer structure (which forms the first multiplication layer of the multiplication region).
(44) In a possible embodiment of the invention, the absorption region has an energy band gap that decreases in the direction of the multiplication region. This decrease may be controlled via the cadmium content. It makes it possible to create an actual electric field that makes it possible to accelerate the transit of carriers towards the multiplication region and to reduce the response time and the temporal instability of the photodiode.
(45) In a possible embodiment of the invention, the photodiode may further include an acceleration layer of carriers of said single type between the multiplication region and the collection region. This acceleration makes it possible to minimise the response time of the photodiode such as for example described in the publication EP 3 267 493 A1.