Methods for producing porous electrodes and batteries containing such electrodes
Patent Information
- Application Number
- JP2024538219
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-12-23
- Filing Date
- 2022-12-20
- Publication Date
- 2025-12-10
AI Technical Summary
Existing lithium-ion batteries face challenges in achieving high electronic conductivity, electrochemical stability, and safety, particularly when thickened, with issues such as uneven carbon black distribution leading to increased resistance and safety risks, and the use of carbon coatings being costly and difficult to implement.
A method involving a ceramic, organic-free mesoporous electrode with a conductive oxide coating on and inside the pores, using nanoparticle aggregates with controlled porosity between 25% and 50% and pore sizes of less than 50 nm, formed without organic joining agents, ensuring homogeneous conductivity and stability.
The solution results in electrodes with reduced electrical resistance, improved temperature resistance, and enhanced electrochemical stability, enabling safe operation and high energy density without the drawbacks of traditional carbon coatings.
Abstract
Description
[Technical field]
[0001] The present invention relates to the field of electrochemistry, and more particularly to thin-layer electrochemical devices. More particularly, the present invention relates to electrodes that can be used in electrochemical devices such as capacitors, lithium-ion batteries, mini-batteries, or lithium-ion batteries with a capacity of more than 1 mA h. The present invention applies to negative electrodes and to positive electrodes. It involves porous electrodes that can be impregnated with a solid electrolyte in liquid phase or can be impregnated with a liquid electrolyte.
[0002] The present invention also relates to a method for preparing such porous electrodes implementing nanoparticles of electrode materials, and to the electrodes thus obtained. The present invention also relates to a method for producing a lithium-ion battery comprising at least one of these electrodes, and the batteries thus obtained. [Background technology]
[0003] Lithium-ion batteries have the best energy density among the various electrochemical storage technologies proposed on the market. There are various architectures and chemical compositions of the electrodes, which make it possible to manufacture these batteries. Methods for manufacturing lithium-ion batteries are presented in numerous papers and patents, and a list is given in the work "Advances in Lithium-Ion Batteries" (edited by W. van Schalkwijk and B. Scrosati), published in 2002 (Kluever Academic / Plenum Publishers). There is an increasing need for very small rechargeable batteries that can be integrated on electronic cards, whose electronic circuits can be used in many fields, for example in cards that secure commerce, in electronic tags, in implantable medical devices, in various micromechanical systems.
[0004] There is also a growing need for large capacity rechargeable batteries, especially for powering transportation devices (electric bikes, scooters, electric motorbikes, electric cars, electric utility vehicles) and for storing electrical energy, e.g. for storing electricity generated by intermittent generators (wind turbines, photovoltaic panels) or for stabilizing electrical networks subject to highly fluctuating supply and demand.
[0005] There is also a growing need for medium-sized rechargeable batteries for a wide range of autonomy and portable devices (eg mobile phones, laptops, handheld power tools, intermittent use kitchen appliances).
[0006] In all of these applications, the possibility of rapid recharging of the batteries is a highly appreciated feature. Likewise, the batteries must not present a risk of short circuiting or of fire. Finally, it is desirable that they be capable of operating over a wide range of temperatures.
[0007] According to the prior art, the electrodes of lithium-ion batteries can be manufactured with the aid of coating techniques, in particular by coating. These methods allow an ink to be deposited on the surface of a substrate, the ink consisting of active material particles being in the form of a powder, the particles constituting this powder having an average particle size that is typically between 5 μm and 15 μm in diameter.
[0008] These deposition techniques, in particular by coating, make it possible to produce layers with a thickness of between approximately 50 μm and approximately 400 μm. The power and energy of the battery can be adjusted by adapting the thickness and porosity of the layers, the size of the active particles of which they are composed, as well as by the presence of various components in the layers, such as binders or even electronically conductive materials. For the production of microbatteries, it is desirable to have smaller thicknesses of the individual constituent layers of the microbattery.
[0009] Apart from the challenges of formulating the ink to obtain high performance electrodes at low manufacturing costs, it should be borne in mind that the ratio between the energy density and the power density of the electrodes can be adapted depending on the size of the active material particles and indirectly depending on the porosity of the layers of the electrodes and their thickness. The paper by J. Newman ("Optimization of Porosity and Thickness of a Battery Electrode by Means of A Reaction-Zone Model", J. Electrochem. Soc., 142(1), pp. 97-101 (1995)) clearly shows the respective effects of the thickness of the electrodes and of their porosity on their discharge (power) rate and energy density.
[0010] Binder-free mesoporous electrode layers for lithium-ion batteries can be deposited by electrophoresis, as is known from WO2019 / 215407 (I-TEN). Although they can be impregnated with a liquid electrolyte, their electrical resistivity remains rather high.
[0011] To increase the low electronic conductivity of electrodes, especially when the electrodes are of significant thickness or are made from electrode active materials that are not very electronically conductive, a certain amount of electronically conductive material, such as carbon black, is generally added to the electrode active material particles. Ideally, the electronically conductive particles should be available at every point on the surface of the electrode active material particles to allow simultaneous insertion / de-insertion of the electrode active particles across the entire surface, thus maximizing the current density and minimizing local stresses and heating due to inhomogeneous electrical transport.
[0012] In practice, it is very difficult to control the placement of carbon black in an electrode. In addition, as the use of smaller and smaller active material particles grows, these challenges become even more prevalent. The non-uniform distribution of carbon black in an electrode induces a much higher polarity of the electrode, which leads to an increase in the series resistance of a battery containing such an electrode. These imbalances in local charge state become even more evident when the current density is high. These imbalances result in poor cycling performance, safety risks, and limited power output of the battery cell. The same is true when the electrode has a non-uniform porosity, i.e., a non-uniform size distribution, and this non-uniformity makes it more difficult to wet the pores of the electrode.
[0013] In this context and in order to reduce the electrical resistivity of mesoporous electrodes, the Applicant has developed a mesoporous electrode comprising a mesoporous layer of at least one electrode active material, which has a carbon coating on and inside the pores of this mesoporous layer, as is known from WO2021 / 220174 (I-TEN). The presence of this electronically conductive carbon coating on the electrode thereby makes it possible to reduce its electrical resistivity, but does not make it possible to significantly increase its withstand voltage, temperature resistance and its electrochemical stability. In addition, the production of an electronically conductive carbon coating on the electrode is expensive and difficult to carry out. Summary of the Invention [Problem to be solved by the invention]
[0014] As the need for very small rechargeable batteries grows, electrodes must meet increasingly drastic specifications. They must have high chemical and electrochemical stability, robustness and corrosion resistance so as to impart high cycling performance, storage stability, temperature stability and long-term reliability to the batteries containing them. The present invention seeks to at least partially remedy the above-listed shortcomings of the prior art.
[0015] More precisely, the problem which the present invention seeks to solve is to provide a method for producing porous electrodes with homogeneous, high electronic conductivity and controlled pore density, which is simple, safe, rapid, easy to implement and cheap.
[0016] The present invention also aims to propose a safe porous electrode having high electronic conductivity, a stable mechanical structure, good thermal stability, especially at high temperatures, and a sufficient service life, which is independent of the thickness of the electrode.
[0017] Another object of the invention is to propose an electrode for a battery capable of operating at high temperatures without reliability problems and without the risk of fire.
[0018] Another object of the present invention is to propose a porous electrode which, in addition to the previous features, can be easily wetted and impregnated with ionic liquids.
[0019] Another object of the present invention is to provide a method for manufacturing an electrochemical device, such as a battery, capacitor, supercapacitor, etc., comprising a porous electrode according to the present invention.
[0020] Another object of the present invention is to provide a method for producing a battery having a capacity not exceeding 1 mA h, which is referred to herein as a "microbattery", comprising a porous electrode according to the present invention.
[0021] Yet another object of the present invention is to propose electrochemical devices such as batteries, in particular lithium-ion batteries and microbatteries, capacitors, supercapacitors, capable of storing high energy density, capable of restoring energy with very high power density (in particular in capacitors or supercapacitors), having an excellent cyclic service life, capable of resisting high temperatures, and having improved safety. [Means for solving the problem]
[0022] In order to increase the performance of electrodes that can be used in conventional lithium-ion batteries, specifically by reducing their electrical resistivity while significantly increasing their voltage endurance, temperature resistance and their electrochemical stability, the inventors sought to find an alternative to the electronically conductive carbon coatings present in the WO2021 / 220174 (I-TEN) application.
[0023] According to the present invention, this problem is solved by an electrode for lithium-ion batteries that is fully ceramic, mesoporous, devoid of organic binders, whose porosity is between 25% and 50% and whose channel and pore size is homogenous to ensure perfect dynamic balance of the cell. The electrode according to the present invention comprises a porous, preferably mesoporous, layer of at least one electrode active material, whose porosity is between 25% and 50% and whose channel and pore size is homogenous to ensure perfect dynamic balance of the cell, and has a coating of an electronically conductive oxide on and within the pores of the porous layer.
[0024] This porous, preferably mesoporous, layer, entirely solid and free of organic components, is obtained by depositing, on a substrate, aggregates and / or aggregates of nanoparticles of the electrode active material, the size of the primary particles constituting said aggregates and / or aggregates being in the order of nanometers or tens of nanometers, said aggregates and / or aggregates containing at least four primary particles.
[0025] The substrate may in a first embodiment be a substrate capable of acting as an electrical current collector, or in a second embodiment may be a temporary intermediate substrate, which will be described in more detail hereinafter.
[0026] The fact of using aggregates with a diameter of tens or even hundreds of nanometers, rather than primary particles that are not aggregated together, each of which has a size of the order of nanometers or tens of nanometers, makes it possible to increase the deposit thickness. The aggregates must have a size of less than 300 nm. Sintering of aggregates with a size of more than 500 nm would not make it possible to obtain a mesoporous continuous film. In this case, two different porosity sizes are observed in the deposit: porosity between the aggregates and porosity inside the aggregates.
[0027] In fact, during drying of a deposit of nanoparticles on a substrate capable of acting as an electric current collector, it is observed that cracks appear in the layer. It is noted that the appearance of those cracks depends essentially on the size of the particles, on the compactness of the deposit and on its thickness. This critical cracking thickness is determined by the following relationship: h max =0.41[(GMφ rcp R 3 ) / 2γ] (In the formula, h max refers to the critical thickness, G refers to the rigidity of the nanoparticle, M refers to the coordination number, and φ rcp refers to the volume fraction of nanoparticles, R refers to the radius of the particle, and γ refers to the interfacial tension between the solvent and air). It is defined by:
[0028] As a result, the use of mesoporous aggregates consisting of primary nanoparticles at least 10 times smaller than the size of the aggregates makes it possible to considerably increase the limit cracking thickness of the layer. Likewise, it is possible to add a few percent of a solvent with a smaller surface tension, for example isopropyl alcohol (abbreviated IPA), in water or ethanol, in order to improve the wetting and adhesion of the deposit and to reduce the risk of cracking. It is possible to add binders, dispersants, in order to increase the deposit thickness while limiting or even eliminating the appearance of cracking. Those additives and organic solvents can be removed, for example by debinding, by heat treatment in air during the sintering process or during a heat treatment carried out before the sintering process.
[0029] Moreover, for primary particles of the same size when they are produced by hydrothermal synthesis, it is possible to modify the size of the aggregates by adjusting the amount of binder (e.g. polyvinylpyrrolidone, abbreviated PVP) in the synthesis reactor during their synthesis by precipitation. Thus, inks can be produced containing aggregates with a very large size dispersion or with two types of individuals that are complementary in size, so as to maximize the compactness of the aggregate deposit. Contrary to the sintering of non-agglomerated nanoparticles, the sintering conditions between aggregates of different sizes are not modified. The primary nanoparticles are those that constitute the aggregates that will be bonded together. These primary nanoparticles have the same size, regardless of the size of the aggregates. The size distribution of the aggregates will make it possible to improve the compactness of the deposit and increase the contact points between the nanoparticles, but will not modify the consolidation temperature.
[0030] However, the aggregates must remain small so that a mesoporous continuous film can be formed during heat treatment of the layer. If the aggregates are too large, this prevents their sintering and the formation of two separate porosities in the layer is observed: one between the aggregates and one inside the aggregates.
[0031] After sintering, a porous, preferably mesoporous, layer or plate is obtained without carbon black or organic binder, in which all of the nanoparticles are bonded together (also known by the necking phenomenon) to form a mesoporous continuous network characterized by single-horn type porosity. The porous, preferably mesoporous layer thus obtained is entirely solid and ceramic. There is no longer a risk of loss of electrical contact between the particles of active material during cycling, which can improve the cycling performance of the battery. Moreover, after sintering, the porous, preferably mesoporous layer is perfectly attached to the metal substrate on which it was deposited or transferred (in the case of initial deposition carried out on an intermediate substrate).
[0032] The heat treatment carried out at high temperature to sinter the nanoparticles together makes it possible to thoroughly dry the electrode and to remove any traces of water or solvents or other organic additives (stabilizers, binders) adsorbed on the surface of the active material particles. The heat treatment at high temperature (sintering) may be preceded by a heat treatment at a lower temperature (debonding) to dry the laid or deposited electrode and to remove any traces of water or solvents or other organic additives (stabilizers, binders) adsorbed on the surface of the active material particles, which debonding may be carried out in an oxidizing atmosphere.
[0033] Depending on the sintering temperature and sintering time it is possible to adapt the porosity of the final electrode. Depending on the energy density needs, the latter can be adapted to a porosity ranging between 25% and 50%.
[0034] In all cases, the power density of the electrodes thus obtained remains extremely high due to the mesoporosity. Moreover, regardless of the size of the mesopores in the active material (after sintering, the concept of nanoparticles no longer applies to the material, which is then known to have a three-dimensional structure with a network of channels and of mesopores), the dynamic balance of the cell remains perfect, which helps to maximize the powder density and the service life of the battery cell.
[0035] The electrode according to the invention has a high specific surface area, which reduces the ionic resistance of the electrode. However, in order for this electrode to deliver the maximum value of power, it is also necessary that it has a very good electronic conductivity to prevent resistive losses in the battery. This improvement of the electronic conductivity of the cell becomes of utmost importance when the thickness of the electrode is to be large. Moreover, this electronic conductivity must be perfectly homogeneous throughout the electrode in order to prevent having locally more electronically resistive areas, which could lead to the formation of hot spots during the power operation of the battery.
[0036] According to an essential feature of the invention, a coating of electronically conductive oxide material is produced on and within the pores of the porous layer, which can be deposited from said precursor of said electronically conductive oxide material, in particular from a liquid precursor of said electronically conductive oxide material.
[0037] In fact, the method according to the invention, which as explained above necessarily involves a step of depositing aggregated nanoparticles of electrode material (active material), means that the nanoparticles naturally "bond" together to produce, after consolidation such as kneading, a three-dimensional rigid porous structure without organic binders; this porous, preferably mesoporous, layer is perfectly well suited for the application of surface treatments by gas or liquid processes penetrating deep into the open porous structure of the layer.
[0038] A first object of the present invention is a method for producing a porous electrode, in particular for an electrochemical device, such as a battery, in particular a lithium-ion microbattery or a lithium-ion battery with a capacity of more than 1 mA h, said porous electrode comprising a porous layer of at least one electrode active material P deposited on a substrate and a layer of an electronically conductive oxide material present on and within the pores of said porous layer, said porous electrode being free of binder and having a porosity between 20% and 60% by volume, preferably between 25% and 50%, and pores with an average diameter of less than 50 nm, said method for producing comprising: (a) a substrate and a colloidal suspension or paste are provided comprising aggregates or agglomerates of monodisperse primary nanoparticles of at least one electrode active material P with a mean primary diameter D50 between 2 nm and 150 nm, preferably between 2 nm and 100 nm, more preferably between 2 nm and 60 nm, said aggregates or agglomerates having a mean diameter D50 between 50 nm and 300 nm, preferably between 100 nm and 200 nm, it being known that said substrate may be a substrate capable of acting as an electric current collector or may be an intermediate substrate, (b) a layer from said colloidal suspension or paste applied in step (a) is deposited on at least one surface of said substrate by a method selected in the group formed by: electrophoresis; extrusion; a printing method, preferably inkjet printing or flexographic printing; a coating method, preferably by doctor blade, by roller, by curtain, by dip coating or by slot die, (c) the layer obtained in step (b), if applied, is dried before or after separating it from its intermediate substrate, then optionally the dried layer is heat treated, preferably in an oxidizing atmosphere, and then the layer is consolidated by thermal and / or mechanical treatment, preferably by sintering, to obtain a porous, preferably mesoporous, layer, (d) a layer of electronically conductive oxide material is formed over and within the pores of said porous layer to form a porous layer coated with a layer of electronically conductive oxide material; (e) Optionally, an electronically insulating and ionically conductive layer is formed over and within the pores of the porous layer coated with the layer of electronically conductive oxide material obtained in step (d). It is characterized by:
[0039] In step (b), the deposition can be carried out on one face or on two faces of the substrate. Advantageously, when said substrate is an intermediate substrate, said layer is separated in step (c) from said intermediate substrate to form a porous plate, in particular after consolidation. This separation step can be carried out before or after drying the layer obtained in step (b).
[0040] Advantageously, when said substrate is an intermediate substrate after step (c) and before step (d), an electronically conductive sheet is applied, which is coated on at least one face, respectively on its two faces, with a thin layer of a conductive adhesive or with a thin layer of nanoparticles of at least one electrode active material P, and then at least one porous plate is bonded on one face, preferably on each of the faces, of the electronically conductive sheet, so as to obtain a porous, preferably mesoporous, layer or plate on the substrate capable of acting as a current collector. In the present application, the terms "porous layer" and "porous plate" are interchangeable.
[0041] Advantageously, in step (d), during step (d1) a layer of a precursor of an electronically conductive oxide material is deposited on and inside the pores of said porous layer, and during step (d2) a transformation of the precursor of an electronically conductive oxide material deposited on said porous layer during step (d1) into an electronically conductive material is performed such that said porous layer has a layer of said electronically conductive oxide material on and inside the pores.
[0042] Advantageously, step (d1) is carried out by impregnation of the porous layer in a liquid phase comprising a precursor of said electronically conductive oxide material, and said transformation of the precursor of said electronically conductive oxide material into an electronically conductive material is carried out during step (d2) by a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere.
[0043] Advantageously, said precursor of an electronically conductive oxide material is selected from organic salts containing one or more metallic elements capable of forming an electronically conductive oxide after a heat treatment, such as calcination, the transformation into said electronically conductive material being a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere.
[0044] The organic salts thereof are preferably: an alcoholate of at least one metallic element capable of forming an electronically conductive oxide after a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere; - an oxalate of at least one metallic element capable of forming an electronically conductive oxide after a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere, and - at least one acetate of a metallic element capable of forming an electronically conductive oxide after a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere; and / or preferably, at least one metallic element is selected from tin, zinc, indium, gallium or a mixture of two or three or four of these elements.
[0045] Advantageously, said porous layer obtained at the end of step (c) has a thickness of 10 m 2 / g to 500m 2 / g and / or a thickness between 4 μm and 400 μm.
[0046] Advantageously, when the colloidal suspension or paste applied in step (a) contains organic additives, such as ligands, stabilizers, binders or residual organic solvents, the layer dried in step (c), or the porous plate, is heat treated, preferably in an oxidizing atmosphere.
[0047] Advantageously, said electrode active material P is: Oxide LiMn2O4, Li 1+x Mn 2-x O4 (in the formula, 0 <x<0.15である)、LiCoO2、LiNiO2、LiMn 1.5 Ni 0.5 O4, LiMn 1.5 Ni 0.5-x X x O4, where X is selected from Al, Fe, Cr, Co, Rh, Nd, other rare earths, such as Sc, Y, Lu, La, Ce, Pr, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, and where 0 <x<0.1である)、LiMn 2-x M x O4 (wherein M=Er, Dy, Gd, Tb, Yb, Al, Y, Ni, Co, Ti, Sn, As, Mg or a mixture of these compounds, and <x<0.4である)、LiFeO2、LiMn 1 / 3 Ni 1 / 3 Co 1 / 3 O2, LiNi 0.8 Co 0.15 Al 0.05 O2, LiAl x Mn 2-x O4 (wherein 0≦x<0.15), LiNi 1 / x Co 1 / y Mn 1 / z O2, where x+y+z=10; Li x M y O2 (wherein 0.6≦y≦0.85, 0≦x+y≦2, and M is selected from Al, Ti, Cr, Mn, Fe, Co, Ni, Cu, Zn, Zr, Nb, Mo, Ru, Sn and Sb, or mixtures of these elements), Li 1.20 Nb 0.20 Mn 0.60 O2, 〇 Li 1+x Nb y Me z A p O₂ (where Me is at least one transition metal selected from Sc, Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Y, Zr, Nb, Mo, Tc, Ru, Rh, Pd, Ag, Cd, Hf, Ta, W, Re, Os, Ir, Pt, Au, Hg; and in the formula, 0.6 < x < 1, 0 < y < 0.5, 0.25 ≤ z < 1 (where A ≠ Me and A ≠ Nb), and 0 ≤ p ≤ 0.2), 〇 Li x Nb y-a N a M z-b P b O 2-c F c (where 1.2 < x ≤ 1.75, 0 ≤ y < 0.55, 0.1 < z < 1, 0 ≤ a < 0.5, 0 ≤ b < 1, 0 ≤ c < 0.8; and in the formula, M, N, and P are each at least one element selected from the group consisting of Ti, Ta, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Al, Zr, Y, Mo, Ru, Rh, and Sb), 〇 Li 1.25 Nb 0.25 Mn 0.50 O₂, Li 1.3 Nb 0.3 Mn 0.40 O₂, Li 1.3 Nb 0.3 Fe 0.40 O₂, Li 1.3 Nb 0.43 Ni 0.27 O₂, Li 1.3 Nb 0.43 Co 0.27 O₂, Li 1.4 Nb 0.2 Mn 0.53 O₂, 〇 Li x Ni 0.2 Mn 0.6 O y (where 0.00 ≤ x ≤ 1.52, 1.07 ≤ y < 2.4), Li 1.2 Ni 0.2 Mn 0.6 O₂, 〇 LiNix Co y Mn 1-x-y O2 (where 0 ≦ x and y ≦ 0.5), LiNi x Ce z Co y Mn 1-x-y O2 (where 0 ≦ x and y ≦ 0.5 and 0 ≦ z), 〇 Phosphates: LiFePO4, LiMnPO4, LiCoPO4, LiNiPO4, Li3V2(PO4)3, Li2MPO4F (where M = Fe, Co, Ni, or a mixture of various elements thereof), LiMPO4F (where M = V, Fe, T or a mixture of various elements thereof), phosphates of the formula LiMM’PO4 (where M and M’ (M ≠ M’) are selected from Fe, Mn, Ni, Co, V), for example LiFe x Co 1-x PO4 (where 0 < x < 1), 〇 Fe 0,9 Co 0,1 OF, LiMSO4F (where M = Fe, Co, Ni, Mn, Zn, Mg), and 〇 All lithiated forms of the following chalcogenides: V2O5, V3O8, TiS2, titanium oxysulfides TiO y S z (where z = 2 - y and 0.3 ≦ y ≦ 1), tungsten oxysulfides WO y S z (where 0.6 < y < 3 and 0.1 < z < 2), CuS, CuS2, preferably Li x V2O5 (where 0 < x ≦ 2), Li x V3O8 (where 0 < x ≦ 1.7), Li x TiS2 (where 0 < x ≦ 1), lithium and titanium oxysulfide Li x TiO y S z (where z = 2 - y, 0.3 ≦ y ≦ 1 and 0 < x ≦ 1), Li x WO y Sz (Wherein, z=2-y, 0.3≦y≦1 and 0 <x≦1である)、Li x CuS (in the formula, 0 <x≦1である)、Li x CuS2 (in the formula, 0 <x≦1である) The compounds are selected from the group formed by
[0048] Advantageously, said electrode active material P as described above is used to manufacture a cathode.
[0049] Advantageously, said electrode active material P is: Li4Ti5O 12 , Li4Ti 5-x M x O 12 (Wherein, M=V, Zr, Hf, Nb, Ta, and 0≦x≦0.25), Niobium oxides and niobium oxides mixed with titanium, germanium, cerium or tungsten, and preferably in the group formed by: NbO 5±δ , Nb 18 W 16 O 93±δ , Nb 16 W5O 55±δ where 0≦x<1 and 0≦δ≦2, LiNbO3, TiNbO 7±δ , Li w TiNb2O7 (wherein w≧0), Ti 1-x M 1 x Nb 2-y M 2 y O 7±δ Or Li w Ti 1-x M 1 x Nb 2-y M 2 y O 7±δ (In the formula, M 1 and M. 2are at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs and Sn, and M 1 and M. 2 may be the same or different, and in which 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and 0≦δ≦0.3, 〇 La x Ti 1-2x Nb 2+x O7 (in the formula, 0 <x<0.5である)、 〇 M x Ti 1-2x Nb 2+x O 7±δ (wherein M is an element whose oxidation degree is +III, more particularly M is at least one element selected from the group consisting of Fe, Ga, Mo, Al, B, and in the formula, 0 <x≦0.20および-0.3≦δ≦0.3である)、Ga 0.10 Ti 0.80 Nb 2.10 O7, Fe 0.10 Ti 0.80 Nb 2.10 O7, 〇 M x Ti 2-2x Nb 10+x O 29±δ (wherein M is an element whose oxidation degree is +III, more particularly M is at least one element selected from the group consisting of Fe, Ga, Mo, Al, B, and in the formula, 0 <x≦0.40および-0.3≦δ≦0.3である)、 Ti 1-x M 1 x Nb 2-y M 2 y O 7-z M 3 z Or Li w Ti 1-x M 1 x Nb 2-y M 2y O 7-z M 3 z (In the formula, 〇 M 1 and M. 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs and Sn, 〇 M 1 and M. 2 may be the same or different from each other, 〇 M 3 is at least one halogen, and wherein 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3; TiNbO 7-z M 3 z Or Li w TiNbO 7-z M 3 z (In the formula, M 3 is at least one halogen, preferably selected from F, Cl, Br, I, or mixtures thereof, and 0 <z≦0.3である)、 Ti 1-x Ge x Nb 2-y M 1 y O 7±z , Li w Ti 1-x Ge x Nb 2-y M 1 y O 7±z , Ti 1-x Ce x Nb 2-y M 1 y O 7±z , Li w Ti 1-x Ce x Nb 2-y M 1 y O 7±z (In the formula, 〇 M1 is at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs and Sn, ○ 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3) Ti 1-x Ge x Nb 2-y M 1 y O 7-z M 2 z , Li w Ti 1-x Ge x Nb 2-y M 1 y O 7-z M 2 z , Ti 1-x Ce x Nb 2-y M 1 y O 7-z M 2 z , Li w Ti 1-x Ce x Nb 2-y M 1 y O 7-z M 2 z (In the formula, 〇 M 1 and M. 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs, Ce and Sn, 〇 M 1 and M. 2 may be the same or different from each other, and wherein 0≦w≦5, 0≦x≦1, 0≦y≦2, and z≦0.3. TiO2, TiO x N y(where x < 2 and 0 < y < 0.2) 〇 LiSiTON, silicon-based and tin-based oxynitrides, more specifically the formula SiSn 0.87 O 1.20 N 1.72 and their lithiated forms, 〇 MO x N y (where M is at least one element selected from Ge, Si, Sn, Zn, or a mixture of one or more of these elements, and where x ≧ 0 and y ≧ 0.3) types of nitrides and oxynitrides, 〇 Li 3-x M x N (where M is at least one element selected from Cu, Ni, Co, or a mixture of one or more of these elements), 〇 Li 3-x M x N (where M is cobalt (Co) and 0 ≦ x ≦ 0.5), Li 3-x M x N (where M is nickel (Ni) and 0 ≦ x ≦ 0.6), Li 3-x M x N (where M is copper (Cu) and 0 ≦ x ≦ 0.3) 〇 Carbon nanotubes, graphene, graphite, 〇 Lithiated iron phosphate (of the typical formula LiFePO4), 〇 The typical formula Si a Sn b O y N z (where a > 0, b > 0, a + b ≦ 2, 0 < y ≦ 4, 0 < z ≦ 3), the silicon and tin mixed oxynitrides called SiTON, especially SiSn 0.87 O 1.2 N 1.72 and the typical formula Si a Sn b C c O y N z(where a > 0, b > 0, a + b ≤ 2, 0 < c < 10, 0 < y < 24, 0 < z < 17) oxynitrides-carbides, 〇 Si x N y type of nitride (specifically, where x = 3 and y = 4), Sn x N y (specifically, where x = 3 and y = 4), Zn x N y (specifically, where x = 3 and y = 2), Li 3-x M x N (where when M = Co, 0 ≤ x ≤ 0.5; when M = Ni, 0 ≤ x ≤ 0.6; when M = Cu, 0 ≤ x ≤ 0.3), Si 3-x M x N4 (where M = Co or Fe and 0 ≤ x ≤ 3), 〇 Oxides SnO2, SnO, Li2SnO3, SnSiO3, Li x SiO y (where x >= 0 and 2 > y > 0), Li4Ti5O 12 , TiNb2O7, Co3O4, SnB 0,6 P 0,4 O 2,9 and TiO2, 〇 Containing carbon between 0 wt% and 10 wt%, preferably the carbon is selected from the group formed by composite oxides TiNb2O7, selected from the group formed by.
[0050] Advantageously, the electrode active material P described above is used to manufacture an anode.
[0051] Another object of the present invention is a porous electrode for an electrochemical device, which includes a porous layer of at least one electrode active material P deposited on a substrate, and a layer of an electronically conductive oxide material deposited on and inside the pores of the porous layer, does not contain a binder, has a porosity between 20% and 60% by volume, preferably between 25% and 50% by volume, and pores with an average diameter of less than 50 nm.
[0052] Another object of the invention is a porous electrode obtainable by the process according to the invention for electrochemical devices comprising a porous layer of at least one electrode active material P deposited on a substrate and a layer of an electronically conductive oxide material deposited on and within the pores of said porous layer, the porous electrode being free of binder and characterized in that it has a porosity of between 20% and 60% by volume, preferably between 25% and 50%, and pores with a mean diameter of less than 50 nm.
[0053] Another object of the invention is a method for manufacturing an electrochemical device, such as a battery, a capacitor, a supercapacitor, a photoelectrochemical cell, or an electronic device, such as a photovoltaic cell, carrying out the method for manufacturing a porous electrode according to the invention or carrying out a porous electrode according to the invention.
[0054] Another object of the invention is a method for producing an electronic or electrochemical device, such as a battery, a capacitor, a supercapacitor, a photoelectrochemical cell, a photovoltaic cell, in particular a lithium-ion battery, such as a microbattery or a lithium-ion battery with a capacity of more than 1 mA h, carrying out the method for producing a porous electrode according to the invention or carrying out a porous electrode according to the invention.
[0055] In particular, the method lends itself well to the manufacture of batteries, and in general, a battery according to the invention may be designed and sized to have a capacity of less than or equal to 1 mA h, and up to approximately 1 mA h (commonly called a "microbattery"), or it may be designed and sized to have a larger capacity of more than 1 mA h, or even significantly greater than this value. Typically, some batteries that are microbatteries but also of larger capacity are designed as surface mount components (a technique usually abbreviated to "SMT", surface mount technology), so as to be compatible with microelectronic manufacturing methods, in particular with robotized methods for assembling electronic cards, known by the term "pick and place".
[0056] Advantageously, said porous electrode is impregnated with an electrolyte, preferably a lithium ion carrier phase formed by the group: an electrolyte consisting of at least one aprotic solvent and at least one lithium salt, an electrolyte consisting of at least one ionic liquid and at least one lithium salt, A mixture of at least one aprotic solvent, at least one ionic liquid and at least one lithium salt. Polymers made ionically conductive by adding at least one lithium salt Polymers that have been made ionically conductive by adding a liquid electrolyte either in the polymer phase or in the mesoporous structure. is selected in
[0057] Another object of the invention is a battery, preferably a lithium-ion battery, obtainable by the method according to the invention.
[0058] In general, the battery according to the invention may be a microbattery, the capacity of which is less than approximately 1 mA h, a minibattery, the capacity of which is more than 1 mA h up to approximately 1 A h, or a battery with a capacity of more than 1 mA h. In fact, the method according to the invention lends itself particularly well to the production of layers with a thickness of more than 1 μm, or even more than 5 μm, while ensuring a low series resistance of the battery.
[0059] Another object of the invention is an electronic or electrochemical device, such as a battery, a capacitor, a supercapacitor, a photovoltaic cell, comprising a porous electrode according to the invention or obtainable by a method according to the invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0060] 1.Definition The present invention relates to a porous electrode whose accessible surfaces, i.e. the outer surface of the electrode and the interior of the accessible pores of the electrode, are coated with an electronically conducting oxide material. The term "electronically conducting oxide" includes electronically conducting oxides and electronically semiconducting oxides.
[0061] Within the scope of this document, the size of a particle is defined by its largest dimension. By "nanoparticle" is meant any particle or object of nanometer size, at least one of whose dimensions is less than or equal to 100 nm.
[0062] "Ionic liquid" means any liquid salt capable of transporting electricity, differentiated from molten salts by a melting temperature below 100° C. Some of these salts remain liquid at ambient temperature and do not solidify even at very low temperatures. Such salts are called "ambient temperature ionic liquids".
[0063] "Mesoporous" material means any solid having in its structure pores called "mesopores" with a size of intermediate size between the size of micropores (width less than 2 nm) and the size of macropores (width more than 50 nm), i.e. between 2 nm and 50 nm. This term corresponds to that adopted by IUPAC (International Union of Pure and Applied Chemistry), which is a reference for the skilled person. Thus, even if mesopores such as those defined above have nanometer dimensions within the defined meaning of nanoparticles, the term "nanopores" is not used herein, and pores with a size less than that of mesopores are known to be called "micropores" by the skilled person.
[0064] The presentation of the concept of porosity (and of the terminology just disclosed above) is given in the article "Texture des materiaux pulverulents or poreux" by F. Rouquerol et al., published in the collection "Techniques de l'Ingenieur", trait Analyse et Characterisation, fascicule, page 1050, which also describes a technique for characterizing pores, specifically the BET method.
[0065] Within the meaning of the present invention, "porous layer" means a layer having pores. "Mesoporous layer" means a layer having mesopores, in which the pores and mesopores contribute significantly to the total porous volume, which is referred to in the use of the expression "porous / mesoporous layer with a porosity of more than X% by volume" used in this description.
[0066] The term "aggregates" refers to weakly bound assemblies of primary particles according to the IUPAC definition. To be precise, these primary particles are nanoparticles with a diameter that can be determined by transmission electron microscopy. Aggregates of assembled primary nanoparticles can usually be broken down (i.e. reduced to primary nanoparticles) in suspension in a liquid phase under the action of ultrasound, according to techniques known to those skilled in the art.
[0067] The term "aggregate" means a tightly bound assembly of primary particles or aggregates according to the IUPAC definition. 2. Preparation of Nanoparticle Suspensions Porous electrodes according to the present invention are developed from colloidal suspensions of clusters, and / or aggregates or pastes of nanoparticles.
[0068] In an even more preferred embodiment of the invention, the nanoparticles are prepared directly in their primary size by their precipitation, Pechini synthesis, hydrothermal synthesis or solvothermal synthesis, a technique that makes it possible to obtain nanoparticles with a very narrow size distribution, called "monodisperse nanoparticles". The size of these non-aggregated or non-agglomerated nanopowders / nanoparticles is called the primary size. It is typically between 2 nm and 150 nm. It is advantageously between 10 nm and 50 nm, preferably between 10 nm and 30 nm, which, thanks to the "necking" phenomenon, favors the formation of an interconnected mesoporous network with electronic and ionic conductivity during the latter steps of the method.
[0069] Binders are also added to suspensions of nanoparticles (clusters and / or agglomerates of nanoparticles, the clusters also being known to be in the form of nanoparticles) to facilitate the production of deposits in particular, or in particular green strips of thick deposits free of cracks.
[0070] This is a colloidal suspension or paste containing aggregates or agglomerates of nanoparticles which is then used to produce a dried porous layer of electrode active material P. 3. Fabrication of the Porous Layer The method for manufacturing an electrode according to the invention comprises applying such a colloidal suspension or paste comprising aggregates or agglomerates of primary monodispersed nanoparticles of at least one electrode active material P onto a substrate to form a layer and then drying said layer to obtain a porous layer. This sequence comprising applying the colloidal suspension or paste onto a substrate to form a layer and drying it can be repeated several times to increase the thickness of the porous layer. The final thickness of this porous layer is advantageously less than 5 mm, preferably between approximately 1 μm and approximately 500 μm. The thickness of this porous layer is advantageously less than 300 μm, preferably between approximately 5 μm and approximately 300 μm, preferably between 5 μm and 150 μm. In general, the colloidal suspension or paste is deposited on the substrate by any suitable technique, in particular by electrophoresis, by extrusion, by inkjet printing (hereinafter inkjet), by spraying, by flexographic printing, by coating methods, preferably by doctor blade or tape casting, by roll coating, by curtain coating, by slot die or by dip coating.
[0071] It is advantageous to use colloidal suspensions or pastes (inks) with a dry extractables content of less than 30% by weight, so that the colloidal suspensions or pastes have a viscosity that is compatible with the coating techniques commonly used in the manufacture of electrodes and so can be deposited on a substrate.
[0072] According to the Applicant's observations, during the subsequent steps of the method a mesoporous layer is obtained having an average diameter of the mesopores between 2 nm and 50 nm, with an average diameter of the nanoparticle aggregates or agglomerates between 80 nm and 300 nm (preferably between 100 nm and 200 nm).
[0073] According to the invention, a porous layer of at least one electrode active material P may be deposited by inkjet or by a coating method, in particular by dip coating, by roll coating, by curtain coating, by slot die or even by doctor blade, which forms a fairly concentrated suspension containing aggregates or agglomerates of nanoparticles of the active material P.
[0074] The porous electrode layer can also be deposited by electrophoresis, but then it is advantageous if a less concentrated suspension containing agglomerates of nanoparticles of active material P is used.
[0075] The deposition of nanoparticle aggregates or agglomerates by electrophoresis, by extrusion, by dip coating, by inkjet, by roll coating, by curtain coating, by slot die or by doctor blade is a method that is simple, safe, easy to implement, easy to industrialize and makes it possible to obtain a homogeneous final porous layer.
[0076] Electrophoretic deposition allows for the homogeneous deposition of layers over large surfaces with high deposition rates. Coating techniques, especially those mentioned above, in the context of electrophoretic deposition techniques allow for simplified bath management, since the suspensions do not become more defective in particles during deposition. Inkjet deposition allows for localized deposition to be carried out.
[0077] Porous layers in thick layers can be produced in a single step by roll coating, by curtain coating, by slot die coating or by doctor blading.
[0078] The technique for depositing the colloidal suspension or paste (ink), and the behavior of the deposition method, must be compatible with the viscosity of the colloidal suspension or paste (ink) used, and vice versa.
[0079] Advantageously, the substrate is an intermediate substrate or a substrate that can be used as a current collector. 3.1 Substrates capable of acting as current collectors In a first embodiment, the substrate is a substrate capable of acting as an electric current collector. The substrate may advantageously be a metal substrate or an electronically conductive carbon substrate, in particular based on graphite, graphene and / or carbon nanotubes. The substrate on which the colloidal suspension or paste (ink) is deposited ensures that the electrode has the function of a current collector. The colloidal suspension or paste (ink) may be deposited on one side or on two sides of the substrate, in particular by the deposition techniques indicated above.
[0080] The current collector in the electrochemical device utilizing the electrode according to the invention can be a stable substrate within the range of operation of the potential of the electrochemical device. In the battery utilizing the electrode according to the invention, the current collector must be a stable substrate in the potential range, relative to the potential of lithium, preferably between 2.5V and 5V for the cathode and between 0V and 2.5V for the anode. Advantageously, the metal substrate is selected, for example, from metal strips (i.e. laminated metal sheets). The substrate can in particular be made of tungsten, molybdenum, chromium, titanium, tantalum, zirconium, niobium, stainless steel, or an alloy of two or more of these materials. Such metal substrates can be quite expensive and can significantly increase the cost of the battery. Tungsten, molybdenum, chromium, titanium, tantalum, zirconium, niobium, stainless steel, and their alloys are particularly resistant to heat treatment at high temperatures, which makes them particularly well suited as sintered electrode substrates.
[0081] It is also possible to coat this substrate capable of acting as a current collector with a conductive or semiconductive oxide before depositing the colloidal suspension or paste (ink), which makes it possible to protect in particular base metal substrates such as copper, nickel, aluminum and carbon in the form of graphite. These base metal noble substrates can thus be used as electrode substrates. This can involve conductive carbon sheets (typically made of graphite), metal sheets or nonmetallic sheets that are metallized (i.e. coated with a metal layer). The substrate is preferably chosen from strips made of copper, nickel, molybdenum, tungsten, tantalum, chromium, niobium, zirconium, titanium, and from alloy strips containing at least one of these elements. It is also possible to use stainless steel. These substrates have the advantage of being stable in a wide potential range and of being resistant to heat treatment.
[0082] Copper, nickel, molybdenum and their alloys are preferably used as substrates for the anode. Substrates based on nickel-chromium, stainless steel, chromium, titanium, aluminum, tungsten, molybdenum, tantalum, zirconium, niobium alloys or alloys containing at least one of these elements, and carbon-based, especially in the form of graphite, are preferably used as cathode electric current collector substrates. These anode and / or cathode substrates may or may not be coated with an electrochemically inert and conductive layer. Such layers may be produced by deposition of nitrides, carbides, graphite, gold, palladium and / or platinum.
[0083] The colloidal suspension or paste (ink) can be deposited on one or both sides of a substrate capable of acting as a current collector, the layer deposited on the substrate being subsequently dried to obtain a porous layer of the electrode active material P.
[0084] This porous layer of electrode active material P thus dried is then consolidated. This consolidation can be carried out by pressing and / or heat treatment, i.e. by heat treatment (heating), by heat treatment preceded by mechanical treatment and optionally by thermomechanical treatment, typically thermocompression. In a highly advantageous embodiment of the invention, this treatment leads to partial coalescence of the primary nanoparticles in the aggregates or agglomerates and between adjacent aggregates or agglomerates, a phenomenon called "necking" or "neck formation". It is characterized by partial coalescence of two particles in contact, which remain separated but are connected by a neck (shrinkage). Lithium ions and electrons are mobile within those necks and can diffuse from one particle to the other without encountering a grain boundary. The nanoparticles are joined together to ensure the conductivity of electrons from one particle to the other. Thus, a rigid continuous mesoporous film without organic binders is formed from the primary nanoparticles, forming a three-dimensional network with strong ionic and electronic conductivity, which network comprises interconnected pores, preferably mesopores. The porous, preferably mesoporous, layer thus obtained is perfectly well suited for the application of surface treatments by gas or liquid processes that penetrate deep into the open porous structure of the layer.
[0085] The temperature required to obtain "necking" depends on the material in view of the diffusion nature of the phenomenon that leads to necking, and the duration of the treatment depends on the temperature. This method can be called sintering, and depending on its duration and its temperature, a more or less pronounced coalescence (necking) is obtained, which has an effect on the porosity. It is therefore possible to obtain electrodes of ceramic porous or mesoporous structure in which controlled pores are explored, while preserving a perfectly homogeneous channel size. During this thermal or thermomechanical treatment, the electrode layer will be cleared of any constituents and organic residues (for example the liquid phase of the suspension of nanoparticles, binders and any surface active products), and it will become an inorganic layer (ceramic).
[0086] According to an essential feature of the invention, a coating of electronically conductive oxide material is produced on and within the pores of said porous layer, i.e. on the accessible surfaces of said porous layer, as will be explained later in section 3.3. 3.2 Intermediate substrate According to a second embodiment, the colloidal suspension or paste (ink) is not deposited on a substrate capable of acting as an electrical current collector, but on an intermediate substrate, which is typically used temporarily.
[0087] In this embodiment, a colloidal suspension or paste (ink) is deposited on the surface of the intermediate substrate to facilitate subsequent separation of the resulting layers from the intermediate substrate.
[0088] In particular, it is possible to deposit rather thick layers (called green sheets) from suspensions of nanoparticles and / or agglomerates of nanoparticles of the electrode active material P, preferably from concentrated suspensions (i.e. not very fluid, preferably pasty) containing nanoparticles of the electrode active material P. Those thick layers can be deposited by any suitable means, in particular by inkjet, by spraying, by flexographic printing, by coating methods, preferably by doctor blade, by roll coating, by curtain coating, by slot die or by dip coating.
[0089] The deposition of nanoparticles by the method of dip coating, by inkjet, by roll coating, by curtain coating, by slot die, by spraying, by flexography or by doctor blade is a method that is simple, safe, easy to implement, industrialize and makes it possible to obtain homogeneous deposits. Inkjet allows the local deposition of colloidal suspensions or pastes (inks), just like deposition by doctor blade. Thick layers can be obtained in a single step by roll coating, curtain coating, slot die, dip coating or doctor blade techniques.
[0090] The intermediate substrate may be a flexible substrate, which may be a polymer sheet, for example polyethylene terephthalate (abbreviated PET). In this second embodiment, the deposition step is advantageously carried out on the face of the intermediate substrate in order to facilitate the subsequent separation of the layer from the substrate. In this second embodiment, it is possible to separate the layer from the substrate before or after drying, preferably after drying and before any heat treatment. The thickness of the layer after drying is advantageously less than 5 mm, advantageously between approximately 1 μm and approximately 500 μm. The thickness of the layer after drying, i.e. the thickness of the layer of the non-sintered electrode, is advantageously less than 300 μm, preferably between approximately 5 μm and approximately 300 μm, preferably between 5 μm and 150 μm.
[0091] In the second embodiment, a method for manufacturing an electrode for an electrochemical device such as a battery uses an intermediate substrate made of a polymer (e.g., PET) resulting in a strip called a "green strip" that is then separated from the substrate, which then forms a free-standing plate or sheet (the term "plate" is used thereafter herein, regardless of its thickness).
[0092] The free-standing porous sheets or plates are then dried. After drying, the free-standing sheets or plates may then be heat treated, if necessary, to remove organic components, preferably in an oxidizing atmosphere. The free-standing sheets or plates are then consolidated as described above in section 3.1.
[0093] The plates thus coagulated advantageously have a thickness of less than 5 mm, preferably between approximately 1 μm and approximately 500 μm. The thickness of the porous plates after coagulation is advantageously less than 300 μm, preferably between approximately 5 μm and approximately 300 μm, preferably between 5 μm and 150 μm.
[0094] According to a second embodiment, to obtain a porous electrode deposited on a substrate capable of acting as a current collector, an electronically conductive sheet is applied coated on at least one of its faces, preferably on both of its faces, with a thin intermediate layer of nanoparticles of the electrode active material P, preferably the same as that constituting the plate, or with a thin layer of a conductive adhesive (charged with graphite) or with a sol-gel type deposit charged with conductive particles, on at least one of its faces, preferably on both of its faces. Said thin layer preferably has a thickness of less than 1 μm. This electronically conductive sheet may be a metal strip or a graphite sheet.
[0095] When said electronically conductive electrical sheet is a metal, it is preferably a laminated sheet, i.e. a sheet obtained by lamination. Lamination may optionally be followed by a final kneading, which may be a soft (full or partial) kneading or a recrystallization kneading, according to the terminology of metallurgy. It is also possible to use electrochemically deposited sheets, such as electrodeposited copper sheets or electrodeposited nickel sheets.
[0096] This electronically conductive sheet is then deposited on a previously obtained plate after drying and optionally heat treatment (i.e. sintering) or inserted between two plates. The whole is then hot pressed so that said thin intermediate layer of nanoparticles becomes deformed by sintering and consolidates the plate / substrate assembly or the plate / substrate / plate assembly, obtaining a rigid and integral subassembly. During this sintering, the bond between the plate and the intermediate layer is established by diffusion bonding. This assembling is carried out with two plates, preferably produced from the same nanoparticles as the electrode active material P, and a metal sheet deposited between those two plates.
[0097] One of the advantages of the second embodiment is that it makes it possible to use cheaper substrates such as aluminum, copper or graphite strips. In fact, those strips do not resist the heat treatment to consolidate the deposited layers, and the fact of bonding them on a plate after their heat treatment also makes it possible to prevent them from oxidizing.
[0098] This diffusion bonded assembly may be performed separately as just described, and the thus obtained plate / substrate subassembly or plate / substrate / plate subassembly, once coated with a layer of electronically conductive oxide material, may be used in the manufacture of electrochemical devices such as batteries. 3.3 Creating a coating or layer of electronically conductive oxide material on and within the porous layer or plate According to an essential feature of the invention, after drying and consolidation, an electronically conductive oxide coating is produced on and inside the pores of said porous layers, porous plates or free-standing porous sheets (hereinafter referred to indifferently as porous layers or porous plates), i.e. on the accessible surfaces of said porous layers or porous plates, so that they can be used, in particular, as porous electrodes in electrochemical devices such as batteries, microbatteries or capacitors.
[0099] The fact of using an electronically conductive coating in oxide form, rather than a carbon coating, confers, among other things, good performances to the final electrode. In fact, the presence of this electronically conductive oxide layer on and within the pores of the porous plate or layer, especially due to the fact that the electronically conductive coating is in oxide form, makes it possible to improve the final properties of the electrode, in particular its withstand voltage, its temperature resistance, makes it possible to improve the electrochemical stability of the electrode, especially when it comes into contact with a liquid electrolyte, makes it possible to reduce the polar resistance of the electrode, even when the electrode is thick. It is essentially a synergistic combination of a porous plate or layer developed from the electrode active material and a porous plate or layer developed from an electronically conductive coating in oxide form deposited on and within the pores of said porous plate or layer, which makes it possible to improve the final properties of the electrode, in particular to obtain thick electrodes without increasing the internal resistance of the electrode.
[0100] Very advantageously, the layer of electronically conductive oxide material can be obtained in various ways, in particular by atomic layer deposition (ALD) techniques, or by impregnation in a liquid phase containing a precursor of the electronically conductive oxide material followed by transformation of said precursor of the electronically conductive material into an electronically conductive material, in particular by heat treatment. More generally, with the technique for the production of coatings of electronically conductive oxide materials presented herein, only the free surfaces of the pores are coated, in particular the accessible surfaces of the porous plate or layer, and only those of the substrate. The "junction" area between the porous layer and the substrate is not covered by the electronically conductive oxide material. This technique presented herein makes it possible to obtain a constant thickness of said layer of electronically conductive oxide material in a porous, preferably mesoporous, plate or layer. Its thickness is typically between 0.5 nm and 10 nm, preferably less than 2 nm.
[0101] ALD techniques are particularly well adapted to coat rigid surfaces with significant roughness layer by layer in a conformal manner that is totally sealed by a cyclical method. They make it possible to produce conformal layers of very low thickness (layers that are called "pinhole-free") that are free of defects, e.g. holes (complete coverage). However, before carrying out any deposition by atomic layer deposition (ALD) techniques, it is necessary to previously remove any traces of organic compounds on the surface of the porous layer. Since ALD is typically carried out at temperatures between 100° C. and 300° C., it is believed that residual organic substances, e.g. organic binders, may decompose within this temperature range and risk contaminating the ALD reactor. Moreover, the growth of layers deposited by ALD is influenced by the nature of the substrate. Layers deposited by ALD on a substrate with multiple regions of different chemical nature will have an inhomogeneous growth that may produce a loss of integrity.
[0102] The layer of electronically conductive material can be very advantageously formed by impregnation in a liquid phase containing said precursor of electronically conductive material, followed by transformation of said precursor of electronically conductive material into electronically conductive material by heat treatment. This method is simpler, faster, easier to carry out and less expensive than atomic layer deposition (ALD) techniques. Advantageously, said precursor of electronically conductive material is selected from organic salts containing one or more metal elements capable of forming an electronically conductive oxide after heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere. The metal elements, preferably the metal cations, can be advantageously selected from tin, zinc, indium, gallium or a mixture of two or three or four of these elements. The organic salt is preferably selected from an alcoholate of at least one metal element capable of forming an electronically conductive oxide after a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere, an oxalate of at least one metal element capable of forming an electronically conductive oxide after a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere, and an acetate of at least one metal element capable of forming an electronically conductive oxide after a heat treatment, such as calcination, preferably carried out in air or in an oxidizing atmosphere.
[0103] Advantageously, said electronically conductive material is preferably: tin oxide (SnO2), zinc oxide (ZnO), indium oxide (In2O3), gallium oxide (Ga2O3), mixtures of two of these oxides, for example indium oxide-tin oxide, which corresponds to a mixture of indium oxide (In2O3) and tin oxide (SnO2), mixtures of three of these oxides or mixtures of four of these oxides, doped oxides based on zinc oxide, the doping being preferably with the addition of gallium (Ga), and / or with the addition of aluminium (Al), and / or with the addition of boron (B), and / or with the addition of beryllium (Be), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of titanium (Ti), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), doped oxides based on indium oxide, the doping being preferably with the addition of tin (Sn), and / or with the addition of gallium (Ga), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of titanium (Ti), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), - doped tin oxide, the doping being preferably by the addition of arsenic (As), and / or by the addition of fluorine (F), and / or by the addition of nitrogen (N), and / or by the addition of niobium (Nb), and / or by the addition of phosphorus (P), and / or by the addition of antimony (Sb), and / or by the addition of aluminium (Al), and / or by the addition of titanium (Ti), and / or by the addition of gallium (Ga), and / or by the addition of chromium (Cr), and / or by the addition of cerium (Ce), and / or by the addition of indium (In), and / or by the addition of cobalt (Co), and / or by the addition of nickel (Ni), and / or by the addition of copper (Cu), and / or by the addition of manganese (Mn), and / or by the addition of germanium (Ge). The electronically conductive oxide material may be selected from the following:
[0104] The porous layer can be impregnated in a solution rich in the precursor of the desired electronically conductive material, from alcoholates, from oxalates or from acetates, to obtain a layer of electronically conductive material, preferably a layer of electronically conductive oxide material.The electrode is then dried and subjected to a heat treatment, preferably in air or in an oxidizing atmosphere, at a temperature sufficient to transform the precursor of the electronically conductive material in question into an electronically conductive material.Therefore, a coating of electronically conductive material, preferably a coating of electronically conductive oxide material, more preferably a coating made of SnO2, ZnO, In2O3, Ga2O3 or indium-tin oxide, is formed, perfectly distributed over the entire inner surface of the electrode.
[0105] The presence of an electronically conductive coating in oxide form, rather than a carbon coating, on and within the pores of the porous layer, makes it possible to give the electrode better electrochemical performance at high temperatures and to significantly increase the stability of the electrode. The fact of using an electronically conductive coating in oxide form, rather than a carbon coating, gives, among other things, better performance to the final electrode. In fact, the presence of this electronically conductive oxide layer on and within the pores of the porous plate or layer, especially due to the fact that the electronically conductive coating is in oxide form, makes it possible to improve the final properties of the electrode, in particular its withstand voltage, its temperature resistance, improve the electrochemical stability of the electrode, and reduce the polar resistance of the electrode, especially when it comes into contact with a liquid electrolyte, even when the electrode is thick. When the electrode is thick and / or the active material of the porous layer is too resistive, it is particularly advantageous to use an electronically conductive coating in oxide form on and within the pores of the electrode active material, in particular of the type In2O3, SnO2, ZnO, Ga2O3, or a mixture of one or more of these oxides.
[0106] The electrodes according to the invention are porous, preferably mesoporous, and have a large specific surface. Increasing the specific surface of the electrode increases the exchange surface and, as a consequence, the power output of the battery, but it also promotes parasitic reactions. The presence of these electronically conductive coatings, in oxide form, on and within the pores of the porous layer makes it possible to block these parasitic reactions.
[0107] Moreover, due to the very large specific surface, the effect of these electronically conductive coatings in oxide form on the electronic conductivity of the electrode will be much more pronounced than in the case of conventional electrodes with smaller specific surfaces, even when the deposited conductive coating has a small thickness. These electronically conductive oxide coatings deposited on and within the pores of the porous layer give the electrode excellent electronic conductivity, especially when the porous layer is developed from an electrode active material that is not very electronically conductive. This layer of electronically conductive oxide material makes it possible to improve the electronic conductivity of the electrode while limiting the dissolution of the electrode, and also to increase the power output of the battery, which is even more true when the coating layer of electronically conductive oxide material has a small thickness.
[0108] It is an essential synergistic combination between a porous plate or layer developed from an electrode active material, in particular to obtain thick electrodes without increasing the internal resistance of the electrode, and an electronically conductive coating, in oxide form, deposited on and within the pores of said porous plate or layer, which makes it possible to improve the final properties of the electrode.
[0109] Moreover, electronically conductive coatings in oxide form on and within the pores of the porous layer are easier and less expensive to produce than carbon coatings. In fact, in the case of coatings made of electronically conductive materials in oxide form, the transformation of the precursors of the electronically conductive materials into electronically conductive coatings does not have to be carried out in an inert atmosphere, as opposed to carbon coatings.
[0110] This coating of coated electronically conductive oxide material typically has a thickness of less than 10 nm, preferably less than 5 nm, more preferably less than 2 nm.
[0111] This coating provides the electrode with good electronic conductivity regardless of its thickness.
[0112] The fact of using an electronically conductive coating in oxide form rather than a carbon coating confers particularly better performance to the final electrode. It is noted that the formation of this coating of electronically conductive oxide material is possible after sintering because the electrode is completely solid, without organic residues, and resists the thermal cycles imposed by the various heat treatments.
[0113] Optionally, on top of this layer of electronically conducting oxide material it is possible to deposit an electronically insulating layer with good ionic conductivity, the thickness of which is typically of the order of 0.5 nm to 20 nm, preferably less than 5 nm and more preferably less than 2 nm.
[0114] The electronically insulating and ionically conductive layers may be of inorganic or organic nature. More particularly, among the inorganic layers, it is possible to use oxides, phosphates or borates, which conduct lithium ions, for example, and among the organic layers, it is possible to use polymers, for example PEO, optionally containing lithium salts, or sulfonated tetrafluoroethylene copolymers, such as Nafion™, CAS no. 31175-20-9.
[0115] This electronically insulating and ionically conductive layer limits the dissolution of ions originating from the electrode and allows their migration into the electrolyte; electrodes made of LiMn2O4 manganese are known to be at risk of dissolving in certain liquid electrolytes, especially at high temperatures.
[0116] When the layer of electronically conductive oxide material is coated with an ionically conductive layer, the latter will primarily ensure the protective function described above, specifically to prevent dissolution of the electrode.
[0117] In summary, these coatings deposited on and within the pores of the porous electrode layer are sought to obtain two effects: increased electronic conductivity and protection against dissolution in the electrolyte at high temperatures. If neither of these two effects is obtained with just a layer made of an electronically conductive oxide material, or if only one coating is not sufficient to obtain both effects, then it is possible to deposit two layers, for example a first layer of an electronically conductive oxide material according to the invention to obtain electronic conductivity and a second layer that is electronically insulating and ionically conductive to obtain additional protection at high temperatures.
[0118] According to the first and second embodiments, a porous electrode according to the invention is obtained, deposited on a metal substrate used as an electronic current collector or located on either side of a metal substrate used as an electronic current collector. The electrode / substrate / electrode subassembly thus obtained according to the first and second embodiments can be used in the manufacture of electrochemical devices such as batteries, in particular microbatteries. The assembly by dispersed bonding can also be carried out by stacking and thermocompression of the entire structure of an electrochemical device (for example a battery, in particular a microbattery), in which case a multilayer stack is assembled comprising a first anode according to the invention, its metal substrate, a second anode according to the invention, a solid electrolyte layer, a first cathode according to the invention, its metal substrate, a second cathode according to the invention, a new solid electrolyte layer, etc.
[0119] This electrode / substrate / electrode subassembly can be used to manufacture electrochemical devices such as batteries (especially microbatteries). Regardless of the embodiment of the electrode / substrate / electrode subassembly, in the latter, an electrolyte film is then deposited. To manufacture a battery with multiple elementary cells, cutouts are then made, and the subassemblies are then stacked (typically in "head-to-tail" mode) and thermo-compression bonded to join the anode and cathode together in the solid electrolyte.
[0120] Alternatively, the cutouts required to produce a battery having multiple elementary cells can be made before depositing the electrolyte film on the respective anode / substrate / anode subassembly and cathode / substrate / cathode subassembly, after which the anode / substrate / anode subassembly and / or cathode / substrate / cathode subassembly are coated with the electrolyte film, and then the subassemblies are stacked (typically in a "head-to-tail" mode) and hot pressed to bond the anodes and cathodes together at the electrolyte film.
[0121] In the two variants just presented, the thermocompression bonding, which is possible thanks to the very small size of the nanoparticles, is carried out at relatively low temperatures, so that no oxidation of the metal layer of the substrate is observed. EXAMPLES
[0122] Preparation of mesoporous cathodes based on LiMn2O4 according to the present invention A suspension of LiMn2O4 nanoparticles was prepared according to the method described by Liddle et al. in "A new one pot hydrothermal synthesis and electrochemical characterisation of Li 1+x Mn 2-yThe compounds were prepared by hydrothermal synthesis as described in the paper entitled "O4 spinel structured compounds", Energy & Environmental Science (2010), vol. 3, pp. 1339-1346. 14.85 g LiOH, H2O were dissolved in 500 ml water. 43.1 g KMnO4 were added to this solution and the liquid phase was injected into the autoclave. Under stirring, isobutyraldehyde and 28 ml water were added until a total volume of 3.54 l was reached. The autoclave was then heated to 180 °C and maintained at this temperature for 6 h. After slow cooling, a black precipitate was obtained in suspension in the solvent. This precipitate was subjected to successive centrifugation-redispersion steps in water until a flocculated suspension was obtained with a conductivity of approximately 300 μS / cm and a zeta potential of -30 mV. The obtained aggregates consisted of aggregated primary particles with a size of 10-20 nm. The obtained aggregates had a spherical shape, an average diameter of approximately 150 nm, and they were characterized by x-ray diffraction and electron microscopy.
[0123] Approximately 10-15% by weight of polyvinylpyrrolidone (PVP) at 360,000 g / mol was then added to the aqueous suspension of the aggregates. The water was evaporated until the suspension of the aggregates had a dry extract of 10%. The ink thus obtained was applied onto a 5 μm thick stainless steel strip (316L). The layer obtained was dried in a temperature and humidity controlled oven to prevent the formation of cracks on drying. The ink was deposited and dried repeatedly to obtain a layer approximately 10 μm thick.
[0124] The layer was compacted in air at 600 °C for 1 h to bond the primary nanoparticles together, improve their adhesion to the substrate, and complete the recrystallization of LiMn2O4. The porous layer so obtained had an open porosity of 45 vol.% with pores between 10 and 20 nm in size.
[0125] A thin layer of ZnO was then deposited on and inside the pores of the LiMn2O4-based mesoporous cathode in an ALD reactor of type P300B (supplier: Picosun) at 180 °C under 2 mbar argon pressure. Argon (Ar) was used here both as carrier gas and for purging. A drying time of 3 hours was applied before each deposition. The precursors used were water and diethylzinc. The deposition cycle consisted of the following steps: inject diethylzinc, purge the chamber with Ar, inject water, purge the chamber with Ar.
[0126] This cycle is repeated to reach a coating thickness of 1.5 nm. After these various cycles, the product was dry distilled at 120° C. for 12 hours to remove the residues of reagents on the surface, thus obtaining a LiMn2O4-based mesoporous cathode with a coating of 1.5 nm of ZnO over its entire accessible surface. EXAMPLES
[0127] Li4Ti5O 12 of mesoporous anodes based on ZnO Li4Ti5O 12 A suspension of nanoparticles of was prepared by glycothermal synthesis: 190 ml of 1,4-butanediol was poured into a beaker and 4.25 g of lithium acetate was added under stirring. The solution was kept under stirring until the acetate was completely dissolved. 16.9 g of titanium butoxide was taken under an inert atmosphere and introduced into the acetic acid solution. The solution was then stirred for a few minutes and then transferred into an autoclave previously charged with an additional 60 ml of butanediol. The autoclave was then closed and purged with nitrogen for at least 10 minutes. The autoclave was then heated to 300° C. at a rate of 3° C. / min and kept at this temperature for 2 hours under stirring. Finally, it was left to cool, still under stirring.
[0128] A white precipitate was obtained in suspension in the solvent. This precipitate was subjected to a centrifugation step-redispersion step in ethanol followed by a pure colloidal suspension with low ionic conductivity. It contained approximately 150 nm aggregates consisting of 10 nm primary particles. The zeta potential was of the order of -45 mV. The product was characterized by x-ray diffraction and electron microscopy.
[0129] The aggregates were electrophoretically deposited in aqueous media on a 5 μm thick stainless steel strip by applying a pulsed current of 0.6 A peak and 0.2 A average, the applied voltage being in the order of 3-5 V for 500 s. A deposit of approximately 4 μm thickness was thus obtained. It was coagulated by RTA kneading in nitrogen at 40% power for 1 s to bond the nanoparticles together and improve the adhesion to the substrate, resulting in Li4Ti5O 12 The recrystallization to 100% was perfect.
[0130] A thin layer of SnO2 is then applied to Li4Ti5O 12 The nanoparticles were deposited on and within the pores of a mesoporous anode based on ZnO.
[0131] 1 g of polyvinylpyrrolidone (abbreviated as PVP) with a molecular weight by weight of 55,000 g / mol was added to 50 mL of distilled water at 40°C, and then 3 g of tin oxalate (SnCO) was added to the aqueous solution of PVP. 12 A mesoporous anode based on Li4Ti5O is then impregnated with this solution, so that the tin oxalate is converted to Li4Ti5O 12 The electrode was then dried and then subjected to a heat treatment, preferably in nitrogen at 600° C. for 5 hours, so as to form a homogeneous coating of SnO2 with a thickness of 2 nm over the entire accessible surface of the electrode, i.e., on the pores and inside the anode, which was carried out so as to ensure perfect dispersion. EXAMPLES
[0132] Fabrication of a battery using a porous cathode according to the invention and a porous anode according to the invention a. Preparation of a suspension of Li3PO4 nanoparticles Two solutions were prepared: 11.44 g of CH3COOLi,2H2O was dissolved in 112 ml of water, then 56 ml of water was added to the medium under vigorous stirring to obtain solution A. 4.0584 g of H3PO4 was diluted in 105.6 ml of water, then 45.6 ml of ethanol was added to this solution to obtain a second solution, which will be referred to hereafter as solution B.
[0133] Solution B was then added under vigorous stirring to solution A. After the disappearance of the foam formed during mixing, the solution obtained, perfectly clear, was added to 1.2 liters of acetone under the action of an Ultraturrax™ type homogenizer to homogenize the medium. A white precipitate in suspension in the liquid phase was immediately observed.
[0134] The reaction medium was homogenized for 5 minutes and then kept under magnetic stirring for 10 minutes. It was decanted and left for 1-2 hours. The supernatant was discarded and the remaining suspension was then centrifuged for 10 minutes at 6,000 rpm. Then 300 ml of water was added to put the precipitate back into suspension (use of sonotrode, magnetic stirring). Under vigorous stirring, 125 ml of a solution of sodium tripolyphosphate at 100 g / l was added to the colloidal suspension thus obtained. The suspension thus became more stable. The suspension was then sonicated with the help of a sonotrode. The suspension was then centrifuged for 15 minutes at 8,000 rpm. The pellet was then redispersed in 150 ml of water. The suspension obtained was then centrifuged again for 15 minutes at 8,000 rpm and the pellet obtained was redispersed in 300 ml of ethanol to obtain a suspension capable of carrying out electrophoretic deposition.
[0135] Approximately 100 nm agglomerates consisting of 10 nm Li3PO4 primary particles were thus obtained in suspension in ethanol. b. Creation of pre-developed anode and cathode layers of porous inorganic layers from a suspension of nanoparticles of Li3PO4 as described in part a). A porous layer of Li3PO4 was then electrophoretically deposited on the surface of the pre-developed anode and cathode by applying an electric field of 20 V / cm for 90 seconds to the suspension of nanoparticles of Li3PO4 obtained above, resulting in a layer of approximately 1.5 μm thickness. This layer was dried in air at 120° C. to remove any traces of organic residues, and then it was calcined in air at 350° C. for 1 hour. c. Fabrication of electrochemical cells After depositing 1.5 μm of porous Li3PO4 on each of the pre-developed electrodes (see Examples 1 and 2), the two subsystems were stacked such that the Li3PO4 films were in contact. This stack was then vacuum thermally bonded.
[0136] To do this, the stack is placed under a pressure of 1.5 MPa and then -3 The stack was then heat-bonded under a pressure of 45 MPa for 1 minute and then the system was cooled to ambient temperature.
[0137] Once the assembly is produced, a rigid multi-layer system consisting of one or more assembled battery cells is obtained.
[0138] This assembly was then immersed in an electrolyte solution containing PYR14TFSI and LiTFSI at 0.7 M. The ionic liquid immediately entered by capillary action in the porosity. The system was kept electroless for 1 min, and then the surface of the stack of cells was dried with a curtain of N2.
Claims
1. A method for producing a porous electrode for an electrochemical device, the porous electrode comprising a porous layer of at least one electrode active material P deposited on a substrate, and a layer of an electronically conductive oxide material present on and within the pores of the porous layer, the porous electrode being free of binders and having a porosity of between 20% and 60% by volume and pores with an average diameter of less than 50 nm; (a) the substrate is provided, and the colloidal suspension or paste has an average primary diameter D between 2 nm and 150 nm 50 and the aggregates or agglomerates have a mean diameter D between 50 nm and 300 nm. 50 wherein the substrate is a substrate or intermediate substrate capable of acting as an electrical current collector. (b) a layer from the colloidal suspension or paste applied in step (a) is deposited on at least one surface of the substrate by a method selected from the group formed by electrophoresis; extrusion; printing methods; and coating methods. (c) the layer obtained in step (b), if applicable, is dried before or after separating it from its intermediate substrate, and then the layer is consolidated by thermal and / or mechanical treatment to obtain a porous layer. (d) a layer of electronically conductive oxide material is formed over and within the pores of said porous layer to form a porous layer coated with a layer of electronically conductive oxide material. characterized in that A method for producing a porous electrode.
2. A method for producing a porous electrode as described in claim 1, wherein an electronically insulating and ionically conductive layer is formed on and within the pores of the porous layer coated with a layer of electronically conductive oxide material obtained in step (d).
3. 2. The method for producing a porous electrode according to claim 1, wherein in step (d), during step (d1), a layer of a precursor of an electronically conductive oxide material is deposited on and inside the pores of the porous layer, and during step (d2), transformation of the precursor of the electronically conductive oxide material deposited on the porous layer during step (d1) into an electronically conductive material is performed so that the porous layer has a layer of the electronically conductive oxide material on and inside the pores.
4. 4. The method for producing a porous electrode according to claim 3, wherein step (d1) is carried out by impregnation of the porous layer in a liquid phase comprising a precursor of said electronically conducting oxide material, and wherein said transformation of the precursor of said electronically conducting oxide material into an electronically conducting material is carried out during step (d2) by heat treatment.
5. The precursors of the electronically conductive oxide material are selected from organic salts containing one or more metal elements capable of forming an electronically conductive oxide after heat treatment, and the transformation into an electronically conductive material is a heat treatment, and the organic salts are preferably selected from: an alcoholate of at least one metallic element capable of forming an electronically conducting oxide after heat treatment; an oxalate of at least one metallic element capable of forming an electronically conducting oxide after heat treatment, and - acetates of at least one metallic element capable of forming an electronically conducting oxide after heat treatment; At least one metal element is selected from tin, zinc, indium, gallium, or a mixture of two, three, or four of these elements; A method for producing the porous electrode of claim 4.
6. The electronically conductive oxide material is - tin oxide (SnO 2 ), zinc oxide (ZnO), indium oxide (In 2 O 3 ), gallium oxide (Ga 2 O 3 ), a mixture of two of these oxides, a mixture of three of these oxides, or a mixture of four of these oxides; doped oxides based on zinc oxide, the doping being with the addition of gallium (Ga), and / or with the addition of aluminum (Al), and / or with the addition of boron (B), and / or with the addition of beryllium (Be), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of titanium (Ti), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), doped oxides based on indium oxide, the doping being with the addition of tin (Sn), and / or with the addition of gallium (Ga), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of titanium (Ti), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), doped tin oxides, the doping being with the addition of arsenic (As), and / or with the addition of fluorine (F), and / or with the addition of nitrogen (N), and / or with the addition of niobium (Nb), and / or with the addition of phosphorus (P), and / or with the addition of antimony (Sb), and / or with the addition of aluminum (Al), and / or with the addition of titanium (Ti), and / or with the addition of gallium (Ga), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), Selected from: A method for producing the porous electrode of claim 1.
7. The porous layer obtained at the end of step (c) has a thickness of 10 m 2 / g to 500m 2 10. A method for producing a porous electrode according to claim 1, having a specific surface area between 1000 and 10000 / g and / or a thickness between 4 μm and 400 μm.
8. 2. The method for producing a porous electrode according to claim 1, wherein when the substrate is an intermediate substrate, the layer is separated from the intermediate substrate in step (c) before or after drying to form a porous plate.
9. 10. A method for producing a porous electrode, wherein the colloidal suspension or paste applied in step (a) comprises an organic additive, and the dried layer in step (c) of claim 1 or the porous plate of claim 7 is heat treated.
10. 2. The method for producing a porous electrode according to claim 1, wherein the electrode active material P is Oxide LiMn 2 O 4 , Li 1+x Mn 2-x O 4 (wherein 0<x<0.15), LiCoO 2 , LiNiO 2 , LiMn 1.5 Ni 0.5 O 4 , LiMn 1.5 Ni 0.5-x X x O 4 where X is selected from Al, Fe, Cr, Co, Rh, Nd, and other rare earths including Sc, Y, Lu, La, Ce, Pr, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, and where 0<x<0.1; LiMn 2-x M x O 4 where M=Er, Dy, Gd, Tb, Yb, Al, Y, Ni, Co, Ti, Sn, As, Mg or a mixture of these compounds, and where 0<x<0.4, LiFeO 2 , LiMn 1/3 Ni 1/3 Co 1/3 O 2 , LiNi 0.8 Co 0.15 Al 0.05 O 2 , LiAl x Mn 2-x O 4 (wherein 0≦x<0.15), LiNi 1/x Co 1/y Mn 1/z O 2 where x+y+z=10. 〇 Li x M y O 2 wherein 0.6≦y≦0.85, 0≦x+y≦2, and M is selected from Al, Ti, Cr, Mn, Fe, Co, Ni, Cu, Zn, Zr, Nb, Mo, Ru, Sn, and Sb, or mixtures of these elements; Li 1.20 Nb 0.20 Mn 0.60 O 2 , 〇 Li 1+x Nb y Me z A p O 2 wherein Me is at least one transition metal selected from Sc, Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Y, Zr, Nb, Mo, Tc, Ru, Rh, Pd, Ag, Cd, Hf, Ta, W, Re, Os, Ir, Pt, Au, Hg, and wherein 0.6<x<1, 0<y<0.5, 0.25<z<1 (wherein A≠Me and A≠Nb), and 0<p<0.2); 〇 Li x Nb y-a N a M z-b P b O 2-c F c wherein 1.2<x≦1.75, 0≦y<0.55, 0.1<z<1, 0≦a<0.5, 0≦b<1, 0≦c<0.8, and wherein M, N, and P are each at least one element selected from the group consisting of Ti, Ta, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Al, Zr, Y, Mo, Ru, Rh, and Sb. 〇 Li 1.25 Nb 0.25 Mn 0.50 O 2 、 1.3 Nb 0.3 Mn 0.40 O 2 、 1.3 Nb 0.3 Fe 0.40 O 2 、 1.3 Nb 0.43 Ni 0.27 O 2 、 1.3 Nb 0.43 Co 0.27 O 2 、 1.4 Nb 0.2 Mn 0.53 O 2 、 〇 Li x Ni 0.2 Mn 0.6 O y (Wherein, 0.00≦x≦1.52, 1.07≦y<2.4), Li 1.2 Ni 0.2 Mn 0.6 O 2 , 〇 LiNi x Co y Mn 1-x-y O 2 (wherein 0≦x and y≦0.5), LiNi x Ce z Co y Mn 1-x-y O 2 wherein 0≦x and y≦0.5 and 0≦z; Phosphate LiFePO 4 , LiMnPO 4 , LiCoPO 4 , LiNiPO 4 , Li 3 V 2 (P.O. 4 ) 3 , Li 2 MPO 4 F (wherein M=Fe, Co, Ni, or a mixture of various elements thereof), LiMPO 4 F (wherein M=V, Fe, T or a mixture of these various elements), of the formula LiMM'PO 4 where M and M' (M≠M') are selected from Fe, Mn, Ni, Co, and V, x Co 1-x P.O. 4 (wherein 0<x<1). 〇Fe 0,9 Co 0,1 OF, LiMSO 4 F (wherein M=Fe, Co, Ni, Mn, Zn, Mg), and All lithiated forms of the following chalcogenides: V 2 O 5 , V 3 O 8 , TiS 2 , titanium oxysulfide TiO y S z (wherein z=2-y and 0.3≦y≦1), tungsten oxysulfide WO y S z (wherein 0.6<y<3 and 0.1<z<2), CuS, CuS 2 , 〇 Li x V 2 O 5 (wherein 0<x≦2), Li x V 3 O 8 (wherein 0<x≦1.7), Li x TiS 2 (wherein 0<x≦1), lithium and titanium oxysulfides Li x TiO y S z (wherein z=2−y, 0.3≦y≦1 and 0<x≦1), Li x WO y S z (wherein z=2−y, 0.3≦y≦1 and 0<x≦1), Li x CuS (wherein 0<x≦1), Li x CuS 2 (Wherein, 0<x≦1) selected from the group formed by method.
11. 2. The method for producing a porous electrode according to claim 1, wherein the electrode active material P is 〇 Li 4 Ti 5 O 12 , Li 4 Ti 5-x M x O 12 (Where M=V, Zr, Hf, Nb, Ta, and 0≦x≦0.25), Niobium oxides and niobium oxides mixed with titanium, germanium, cerium or tungsten from the group formed by: Nb 2 O 5±δ , Nb 18 W 16 O 93±δ , Nb 16 W 5 O 55±δ (wherein 0≦x<1 and 0≦δ≦2), LiNbO 3 , TiNb 2 O 7±δ , Li w TiNb 2 O 7 (wherein w≧0), Ti 1-x M 1 x Nb 2-y M 2 y O 7±δ or Li w Ti 1-x M 1 x Nb 2-y M 2 y O 7±δ (In the formula, M 1 and M 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs, and Sn, and M 1 and M 2 are the same or different, and in the formula, 0≦w≦5, 0≦x≦1, 0≦y≦2, and 0≦δ≦0.3; 〇 La x Ti 1-2x Nb 2+x O 7 (wherein 0<x<0.5). 〇 M x Till 1-2x N﹂ 2+x Oh 7±δ where M is an element whose oxidation degree is +III, and where 0<x≦0.20 and −0.3≦δ≦0.3, Ga 0.10 Ti 0.80 Nb 2.10 O 7 , Fe 0.10 Ti 0.80 Nb 2.10 O 7 , 〇 M x Till 2-2x N﹂ 10+x Oh 29±δ where M is an element whose oxidation degree is +III, and where 0<x≦0.40 and −0.3≦δ≦0.
3. 〇 Ti 1-x M 1 x Nb 2-y M 2 y O 7-z M 3 z or Li w Ti 1-x M 1 x Nb 2-y M 2 y O 7-z M 3 z (In the formula, ○ M 1 and M 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs, and Sn, ○ M 1 and M 2 are the same or different from each other, ○ M 3 is at least one halogen, and wherein 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3; TiNb 2 O 7-z M 3 z or Li w TiNb 2 O 7-z M 3 z (In the formula, M 3 is at least one halogen selected from F, Cl, Br, I, or mixtures thereof, and 0<z≦0.3; 〇 Ti 1-x Ge x Nb 2-y M 1 y O 7±z 、 Li w Ti 1-x Ge x Nb 2-y M 1 y O 7±z 、 Ti 1-x Ce x Nb 2-y M 1 y O 7±z 、 Li w Ti 1-x Ce x Nb 2-y M 1 y O 7±z (wherein, ○ M 1 is at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs and Sn, ○ 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3 〇 Ti 1-x Ge x Nb 2-y M 1 y O 7-z M 2 z 、 Li w Ti 1-x Ge x Nb 2-y M 1 y O 7-z M 2 z 、 Ti 1-x Ce x Nb 2-y M 1 y O 7-z M 2 z 、 Li w Ti 1-x Ce x Nb 2-y M 1 y O 7-z M 2 z (wherein, ○ M 1 and M 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs, Ce and Sn, ○ M 1 and M 2 are the same or different from each other, and wherein 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3 TiO 2 , TiO x N y where x<2 and 0<y<0.
2. LiSiTON, silicon- and tin-based oxynitride, formula SiSn 0.87 O 1.20 N 1.72 , and their lithiated forms, 〇 MO x N y Nitrides and oxynitrides of the type: wherein M is at least one element selected from Ge, Si, Sn, Zn, or a mixture of one or more of these elements, and wherein x≧0 and y≧0.3; 〇 Li 3-x M x N, wherein M is at least one element selected from Cu, Ni, Co, or a mixture of one or more of these elements; 〇 Li 3-x M x N (wherein M is cobalt (Co) and 0≦x≦0.5), Li 3-x M x N (wherein M is nickel (Ni) and 0≦x≦0.6), Li 3-x M x N (wherein M is copper (Cu) and 0≦x≦0.3) Carbon nanotubes, graphene, graphite, Typical formula LiFePO 4 of lithium iron phosphate, Typical formula Si a Sn b O y N z Mixed silicon and tin oxynitrides (SiTON), SiSn 0.87 O 1.2 N 1.72 , and the typical formula Si a Sn b C c O y N z oxynitride-carbide of the formula: wherein a>0, b>0, a+b≦2, 0<c<10, 0<y<24, 0<z<17; 〇Si x N y Nitrides of the type (where x=3 and y=4), Sn x N y (wherein x=3 and y=4), Zn x N y (wherein x=3 and y=2), Li 3-x M x N (wherein, when M=Co, 0≦x≦0.5, when M=Ni, 0≦x≦0.6, when M=Cu, 0≦x≦0.3), Si 3-x M x N 4 (Where M=Co or Fe and 0≦x≦3), Oxide SnO 2 , SnO, Li 2 SnO 3 , SnSiO 3 , Li x SiO y (wherein x>=0 and 2>y>0), Li 4 Ti 5 O 12 , TiNb 2 O 7 , Co 3 O 4 , SnB 0,6 P 0,4 O 2,9 and TiO 2 , TiNb composite oxide containing between 0 and 10% by weight of carbon 2 O 7 , selected from the group formed by method.
12. 10. A porous electrode obtainable by the method for producing a porous electrode according to claim 1, comprising a porous layer of at least one electrode active material P deposited on a substrate and a layer of an electronically conductive oxide material deposited on and within the pores of said porous layer, the porous electrode being free of binders and having a porosity of between 20% and 60% by volume and a mean diameter of pores of less than 50 nm.
13. 1. A porous electrode for an electrochemical device comprising a porous layer of at least one electrode active material P deposited on a substrate, and a layer of an electronically conductive oxide material deposited on and within the pores of said porous layer, wherein the porous electrode is binder-free and has a porosity of between 20% and 60% by volume and an average diameter of pores less than 50 nm.
14. 14. The porous electrode according to claim 13, wherein the electronically conductive oxide material is: - tin oxide (SnO 2 ), zinc oxide (ZnO), indium oxide (In 2 O 3 ), gallium oxide (Ga 2 O 3 ), a mixture of two of these oxides, a mixture of three of these oxides, or a mixture of four of these oxides; doped oxides based on zinc oxide, the doping being with the addition of gallium (Ga), and / or with the addition of aluminum (Al), and / or with the addition of boron (B), and / or with the addition of beryllium (Be), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of titanium (Ti), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), doped oxides based on indium oxide, the doping being with the addition of tin (Sn), and / or with the addition of gallium (Ga), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of titanium (Ti), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), doped tin oxides, the doping being with the addition of arsenic (As), and / or with the addition of fluorine (F), and / or with the addition of nitrogen (N), and / or with the addition of niobium (Nb), and / or with the addition of phosphorus (P), and / or with the addition of antimony (Sb), and / or with the addition of aluminum (Al), and / or with the addition of titanium (Ti), and / or with the addition of gallium (Ga), and / or with the addition of chromium (Cr), and / or with the addition of cerium (Ce), and / or with the addition of indium (In), and / or with the addition of cobalt (Co), and / or with the addition of nickel (Ni), and / or with the addition of copper (Cu), and / or with the addition of manganese (Mn), and / or with the addition of germanium (Ge), Selected from: Porous electrode.
15. 14. The porous electrode according to claim 13, wherein the electrode active material P is Oxide LiMn 2 O 4 , Li 1+x Mn 2-x O 4 (wherein 0<x<0.15), LiCoO 2 , LiNiO 2 , LiMn 1.5 Ni 0.5 O 4 , LiMn 1.5 Ni 0.5-x X x O 4 where X is selected from Al, Fe, Cr, Co, Rh, Nd, and other rare earths including Sc, Y, Lu, La, Ce, Pr, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, and where 0<x<0.1; LiMn 2-x M x O 4 where M=Er, Dy, Gd, Tb, Yb, Al, Y, Ni, Co, Ti, Sn, As, Mg or a mixture of these compounds, and where 0<x<0.4, LiFeO 2 , LiMn 1/3 Ni 1/3 Co 1/3 O 2 , LiNi 0.8 Co 0.15 Al 0.05 O 2 , LiAl x Mn 2-x O 4 (wherein 0≦x<0.15), LiNi 1/x Co 1/y Mn 1/z O 2 where x+y+z=10. 〇 Li x M y O 2 wherein 0.6≦y≦0.85, 0≦x+y≦2, and M is selected from Al, Ti, Cr, Mn, Fe, Co, Ni, Cu, Zn, Zr, Nb, Mo, Ru, Sn, and Sb, or mixtures of these elements; Li 1.20 Nb 0.20 Mn 0.60 O 2 , 〇 Li 1+x Nb y Me z A p O 2 wherein Me is at least one transition metal selected from Sc, Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Y, Zr, Nb, Mo, Tc, Ru, Rh, Pd, Ag, Cd, Hf, Ta, W, Re, Os, Ir, Pt, Au, Hg, and wherein 0.6<x<1, 0<y<0.5, 0.25<z<1 (wherein A≠Me and A≠Nb), and 0<p<0.2); 〇 Li x Nb y-a N a M z-b P b O 2-c F c wherein 1.2<x≦1.75, 0≦y<0.55, 0.1<z<1, 0≦a<0.5, 0≦b<1, 0≦c<0.8, and wherein M, N, and P are each at least one element selected from the group consisting of Ti, Ta, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Al, Zr, Y, Mo, Ru, Rh, and Sb. 〇 Li 1.25 Nb 0.25 Mn 0.50 O 2 、 1.3 Nb 0.3 Mn 0.40 O 2 、 1.3 Nb 0.3 Fe 0.40 O 2 、 1.3 Nb 0.43 Ni 0.27 O 2 、 1.3 Nb 0.43 Co 0.27 O 2 、 1.4 Nb 0.2 Mn 0.53 O 2 、 〇 Li x Ni 0.2 Mn 0.6 O y (Wherein, 0.00≦x≦1.52, 1.07≦y<2.4), Li 1.2 Ni 0.2 Mn 0.6 O 2 , 〇 LiNi x Co y Mn 1-x-y O 2 (wherein 0≦x and y≦0.5), LiNi x Ce z Co y Mn 1-x-y O 2 wherein 0≦x and y≦0.5 and 0≦z; Phosphate LiFePO 4 , LiMnPO 4 , LiCoPO 4 , LiNiPO 4 , Li 3 V 2 (P.O. 4 ) 3 , Li 2 MPO 4 F (wherein M=Fe, Co, Ni, or a mixture of various elements thereof), LiMPO 4 F (wherein M=V, Fe, T or a mixture of these various elements), of the formula LiMM'PO 4 where M and M' (M≠M') are selected from Fe, Mn, Ni, Co, and V, x Co 1-x P.O. 4 (wherein 0<x<1). 〇Fe 0,9 Co 0,1 OF, LiMSO 4 F (wherein M=Fe, Co, Ni, Mn, Zn, Mg), and All lithiated forms of the following chalcogenides: V 2 O 5 , V 3 O 8 , TiS 2 , titanium oxysulfide TiO y S z (wherein z=2-y and 0.3≦y≦1), tungsten oxysulfide WO y S z (wherein 0.6<y<3 and 0.1<z<2), CuS, CuS 2 , 〇 Li x V 2 O 5 (wherein 0<x≦2), Li x V 3 O 8 (wherein 0<x≦1.7), Li x TiS 2 (wherein 0<x≦1), lithium and titanium oxysulfides Li x TiO y S z (wherein z=2−y, 0.3≦y≦1 and 0<x≦1), Li x WO y S z (wherein z=2−y, 0.3≦y≦1 and 0<x≦1), Li x CuS (wherein 0<x≦1), Li x CuS 2 (Wherein, 0<x≦1) selected from the group formed by Porous electrode.
16. The electrode active material P is 〇 Li 4 Ti 5 O 12 , Li 4 Ti 5-x M x O 12 (Where M=V, Zr, Hf, Nb, Ta, and 0≦x≦0.25), Niobium oxides and niobium oxides mixed with titanium, germanium, cerium or tungsten from the group formed by: Nb 2 O 5±δ , Nb 18 W 16 O 93±δ , Nb 16 W 5 O 55±δ (wherein 0≦x<1 and 0≦δ≦2), LiNbO 3 , TiNb 2 O 7±δ , Li w TiNb 2 O 7 (wherein w≧0), Ti 1-x M 1 x Nb 2-y M 2 y O 7±δ or Li w Ti 1-x M 1 x Nb 2-y M 2 y O 7±δ (In the formula, M 1 and M 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs, and Sn, and M 1 and M 2 are the same or different, and in the formula, 0≦w≦5, 0≦x≦1, 0≦y≦2, and 0≦δ≦0.3; 〇 La x Ti 1-2x Nb 2+x O 7 (wherein 0<x<0.5). 〇 M x Till 1-2x N﹂ 2+x Oh 7±δ where M is an element whose oxidation degree is +III, and where 0<x≦0.20 and −0.3≦δ≦0.3, Ga 0.10 Ti 0.80 Nb 2.10 O 7 , Fe 0.10 Ti 0.80 Nb 2.10 O 7 , 〇 M x Till 2-2x N﹂ 10+x Oh 29±δ where M is an element whose oxidation degree is +III, and where 0<x≦0.40 and −0.3≦δ≦0.
3. 〇 Ti 1-x M 1 x Nb 2-y M 2 y O 7-z M 3 z or Li w Ti 1-x M 1 x Nb 2-y M 2 y O 7-z M 3 z (In the formula, ○ M 1 and M 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs, and Sn, ○ M 1 and M 2 are the same or different from each other, ○ M 3 is at least one halogen, and wherein 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3; TiNb 2 O 7-z M 3 z or Li w TiNb 2 O 7-z M 3 z (In the formula, M 3 is at least one halogen selected from F, Cl, Br, I, or mixtures thereof, and 0<z≦0.3; 〇 Ti 1-x Ge x Nb 2-y M 1 y O 7±z 、 Li w Ti 1-x Ge x Nb 2-y M 1 y O 7±z 、 Ti 1-x Ce x Nb 2-y M 1 y O 7±z 、 Li w Ti 1-x Ce x Nb 2-y M 1 y O 7±z (wherein, ○ M 1 is at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs and Sn, ○ 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3 〇 Ti 1-x Ge x Nb 2-y M<0000�33> y O 7-z M 2 z 、Li w Ti 1-x Ge x Nb 2-y M 1 y O 7-z M 2 z 、Ti 1-x Ce x Nb 2-y M 1 y O 7-z M 2 z 、Li w Ti 1-x Ce x Nb 2-y M 1 y O 7-z M 2 z (wherein, It should be noted that there seems to be an error in the tag " <0000�33> " in the original text. It is likely supposed to be " 1 ". This translation is based on the best understanding of the provided content with the assumption of correcting this potential error. ○ M 1 and M 2 are each at least one element selected from the group consisting of Nb, V, Ta, Fe, Co, Ti, Bi, Sb, As, P, Cr, Mo, W, B, Na, Mg, Ca, Ba, Pb, Al, Zr, Si, Sr, K, Cs, Ce and Sn, ○ M 1 and M 2 are the same or different from each other, and wherein 0≦w≦5 and 0≦x≦1 and 0≦y≦2 and z≦0.3 TiO 2 , TiO x N y where x<2 and 0<y<0.
2. LiSiTON, silicon- and tin-based oxynitride, formula SiSn 0.87 O 1.20 N 1.72 , and their lithiated forms, 〇 MO x N y Nitrides and oxynitrides of the type: wherein M is at least one element selected from Ge, Si, Sn, Zn, or a mixture of one or more of these elements, and wherein x≧0 and y≧0.3; 〇 Li 3-x M x N, wherein M is at least one element selected from Cu, Ni, Co, or a mixture of one or more of these elements; 〇 Li 3-x M x N (wherein M is cobalt (Co) and 0≦x≦0.5), Li 3-x M x N (wherein M is nickel (Ni) and 0≦x≦0.6), Li 3-x M x N (wherein M is copper (Cu) and 0≦x≦0.3) Carbon nanotubes, graphene, graphite, Typical formula LiFePO 4 of lithium iron phosphate, Typical formula Si a Sn b O y N z Mixed silicon and tin oxynitrides (SiTON), SiSn 0.87 O 1.2 N 1.72 , and the typical formula Si a Sn b C c O y N z oxynitride-carbide of the formula: wherein a>0, b>0, a+b≦2, 0<c<10, 0<y<24, 0<z<17; 〇Si x N y Nitrides of the type (where x=3 and y=4), Sn x N y (wherein x=3 and y=4), Zn x N y (wherein x=3 and y=2), Li 3-x M x N (wherein, when M=Co, 0≦x≦0.5, when M=Ni, 0≦x≦0.6, when M=Cu, 0≦x≦0.3), Si 3-x M x N 4 (Where M=Co or Fe and 0≦x≦3), Oxide SnO 2 , SnO, Li 2 SnO 3 , SnSiO 3 , Li x SiO y (wherein x>=0 and 2>y>0), Li 4 Ti 5 O 12 , TiNb 2 O 7 , Co 3 O 4 , SnB 0,6 P 0,4 O 2,9 and TiO 2 , TiNb composite oxide containing between 0 and 10% by weight of carbon 2 O 7 , selected from the group formed by The porous electrode according to claim 13.
17. A method for manufacturing an electronic or electrochemical device, comprising carrying out the method for manufacturing a porous electrode according to claim 1.
18. A method for manufacturing an electronic device or an electrochemical device, comprising forming a porous electrode according to claim 12.
19. 18. The method for producing an electronic or electrochemical device according to claim 17, wherein the electronic or electrochemical device is selected from the group formed by lithium ion batteries having a capacity greater than 1 mA h and lithium ion batteries having a capacity not exceeding 1 mA h, capacitors, supercapacitors, photovoltaic cells, photoelectrochemical cells.
20. The porous electrode is an electrolyte consisting of at least one aprotic solvent and at least one lithium salt, an electrolyte consisting of at least one ionic liquid and at least one lithium salt, a mixture of at least one aprotic solvent, at least one ionic liquid and at least one lithium salt, Polymers made ionically conductive by adding at least one lithium salt Polymers made ionically conductive by adding a liquid electrolyte either in the polymer phase or in a mesoporous structure impregnated with a lithium ion carrier phase selected from the group formed by 20. A method for manufacturing the battery of claim 17.
21. 18. An electronic or electrochemical device obtainable by the method for manufacturing an electronic or electrochemical device according to claim 17.
22. 22. An electrochemical device according to claim 21, characterized in that it is a lithium-ion battery with a capacity of more than 1 mA h.
23. 22. An electrochemical device according to claim 21, characterized in that it is a lithium-ion battery with a capacity not exceeding 1 mA h.
24. 22. The electrochemical device of claim 21, characterized in that it is a capacitor, a supercapacitor or a photoelectrochemical cell.
25. 22. The device of claim 21, characterized in that it is a photovoltaic cell.