SOLID ELECTRODE INCLUDING ELECTROLYTE-IMPREGNATED ACTIVE MATERIAL PARTICLES

20170162862 ยท 2017-06-08

    Inventors

    Cpc classification

    International classification

    Abstract

    A method for manufacturing a solid electrode. To more strongly utilize the intrinsic properties of a porous active material with respect to capacitance and therefore energy density and also rate and high-current capability, in the method, porous active material particles are impregnated using an ion-conducting liquid which contains monomers and/or oligomers in particular and a solid electrode is formed from the impregnated active material particles by adding at least one solid electrolyte. In addition, the invention relates to such solid electrodes and all-solid-state cells.

    Claims

    1-20. (canceled)

    21. A method for manufacturing a solid electrode, the method comprising: impregnating porous active material particles using an ion-conducting liquid; and forming a solid electrode from the impregnated active material particles by adding at least one solid electrolyte.

    22. The method of claim 21, wherein the ion-conducting liquid includes at least one of: (i) an ion-conducting liquid containing at least one of monomers and oligomers for forming at least one of a polymer electrolyte and an oligomer electrolyte, and (ii) a liquid electrolyte.

    23. The method of claim 22, wherein the at least one of the monomers and the oligomers are at least one of polymerized and cross-linked to form at least one of a polymer electrolyte and a oligomer electrolyte.

    24. The method of claim 22, wherein at least one of (i) the at least one of the monomers and the oligomers, and (ii) the at least one of the polymer electrolyte and the oligomer electrolyte formed therefrom are linked chemically to functional groups on the surface of the porous active material particles.

    25. The method of claim 21, wherein the ion-conducting liquid, which contains monomers and/or oligomers, furthermore contains a polymerization initiator and/or a cross-linking initiator and/or a linking initiator and/or the polymerization and/or cross-linking and/or linking reaction is started thermally and/or in a radiation-induced way or a UV-induced way.

    26. The method of claim 21, wherein the impregnated active material particles are treated with a further liquid, which contains at least one gel-forming and/or ion-conductive solvent and/or at least one liquid electrolyte, before the formation of the solid electrode.

    27. The method of claim 22, wherein the at least one of the monomers and oligomers for forming the at least one of the polymer electrolyte and the oligomer electrolyte are configured to form at least one of a single-ion-conducting polyelectrolyte and a oligoelectrolyte and/or to form at least one of an ion-conductive polymer and an ion-conductive oligomer.

    28. The method of claim 22, wherein the ion-conducting liquid, which contains monomers and/or oligomers, furthermore includes monomers and/or oligomers for forming an ion-conductive polymer, which has a lower glass transition temperature and/or a higher conducting salt solubility and/or coordination capability than the polymer electrolyte and/or oligomer electrolyte formed from the monomers and/or oligomers for forming a polymer electrolyte and/or oligomer electrolyte.

    29. The method of claim 21, wherein the ion-conducting liquid, which contains monomers and/or oligomers, furthermore contains conductive additive nanoparticles, including carbon nanoparticles.

    30. The method of claim 21, wherein the at least one solid electrolyte includes at least one polymer electrolyte and/or at least one inorganic, including a ceramic and/or glass-like ion conductor, in particular a lithium argyrodite and/or a sulfidic glass.

    31. The method of claim 21, wherein the monomers and/or oligomers for forming a polymer electrolyte and/or oligomer electrolyte and/or the at least one solid electrolyte, the at least one polymer electrolyte of the at least one solid electrolyte, include at least one unit of the general chemical formula: ##STR00008## or are designed for the formation thereof, -[A]- standing for a unit which forms a polymer backbone or oligomer backbone, X standing for a spacer, x standing for the number of the spacer X and being 1 or 0, and Q standing for a negatively charged group Q.sup. and a counter ion Z.sup.+ or Q standing for an uncharged group Q or Q standing for a positively charged group Q.sup.+ and a counter ion Z.sup., in particular Q standing for a negatively charged group Q.sup. and a counter ion Z.sup.+.

    32. The method of claim 21, wherein one of the following is satisfied: (i) the solid electrode is formed with a dry coating process, in which the impregnated active material particles and at least one solid electrolyte and optionally at least one conductive additive are mixed and a substrate, in particular a current collector is coated using the resulting coating material, and (ii) the solid electrode is formed with a wet coating process, in which the impregnated active material particles and at least one solid electrolyte and optionally at least one conducting salt are mixed with at least one coating solvent and a substrate, in particular a current collector, is coated using the resulting coating material, the at least one coating solvent being removed again after the coating by a drying process.

    33. The method of claim 21, wherein the solid electrode is a solid cathode, in which the porous active material particles are cathode active material particles, or the solid electrode is a solid anode, in which the porous active material particles are anode active material particles.

    34. The method of claim 21, wherein the porous active material particles or cathode active material particles include a sulfur-carbon composite, in particular a sulfur-polymer and/or carbon modification composite, in particular a sulfur-polyacrylonitrile composite, or are formed therefrom.

    35. A solid electrode, comprising: a solid cathode or a solid anode, which is formed from impregnated active material particles by adding at least one solid electrolyte, wherein an ion-conducting liquid impregnates the impregnated porous active material particles.

    36. A solid electrode, comprising: a solid cathode or a solid anode, which is formed from impregnated active material particles by adding at least one solid electrolyte, wherein an ion-conducting liquid impregnates the impregnated porous active material particles; wherein 50 vol. % of the open pores of the porous active material particles, with respect to the total pore volume of the open pores of the porous active material particles, are filled with at least one electrolyte, in particular a polymer electrolyte and/or oligomer electrolyte, including, a single-ion-conducting polyelectrolyte and/or oligoelectrolyte, the electrolyte-filled, porous active material particles being embedded in at least one solid electrolyte.

    37. The solid electrode of claim 36, wherein the solid electrode includes at least one conductive additive, in particular the at least one conductive additive also being embedded in the at least one solid electrolyte.

    38. The solid electrode of claim 36, wherein the solid electrode is a solid cathode, the porous active material particles including a sulfur-carbon composite, in particular a sulfur-polymer and/or carbon modification composite, in particular a sulfur-polyacrylonitrile composite, or being formed therefrom.

    39. An all-solid-state cell, which is an all-solid-state alkali metal sulfur cell, comprising: a cathode; a separator; and an anode; wherein each of the solid cathode and the solid anode, are formed from impregnated active material particles by adding at least one solid electrolyte, wherein an ion-conducting liquid impregnates the impregnated porous active material particles.

    40. The all-solid-state cell of claim 39, wherein the separator includes a block copolymer, in particular a polyethylene oxide-polystyrene block copolymer, and/or a single-ion-conducting polyelectrolyte and/or an inorganic ion conductor.

    41. The method of claim 21, wherein the solid electrode includes an all-solid-state cell.

    42. The method of claim 21, wherein the ion-conducting liquid includes a lithium-ion-conducting liquid.

    43. The method of claim 22, wherein at least one of (i) the at least one of the monomers and the oligomers, and (ii) the at least one of the polymer electrolyte and the oligomer electrolyte formed therefrom are linked covalently to functional groups on the surface of the porous active material particles.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0178] FIG. 1 shows schematic cross sections to illustrate one specific embodiment of the manufacturing method according to the present invention.

    [0179] FIG. 2 shows a schematic cross section to illustrate the filling degree of a porous active material particle processed with the aid of a conventional method.

    [0180] FIG. 3 shows a schematic cross section to illustrate one specific embodiment of a solid electrode according to the present invention.

    DETAILED DESCRIPTION

    [0181] FIG. 1 illustrates that in the specific embodiment shown therein, in a method step a), porous active material particles 10 are impregnated using an ion-conducting, in particular lithium-ion-conducting liquid. An ion-conducting, in particular lithium-ion-conducting liquid, which contains monomers and/or oligomers, and which contains monomers 1 and/or oligomers for forming a polymer electrolyte 2 and/or oligomer electrolyte, and/or a liquid electrolyte, may be used as the ion-conducting liquid, as illustrated in FIG. 1. Monomers 1 and/or oligomers for forming a polymer electrolyte 2 and/or oligomer electrolyte may be configured in particular to form a single-ion-conducting polyelectrolyte 2 and/or oligomer electrolyte and/or to form an ion-conductive, in particular lithium-ion-conductive polymer.

    [0182] Porous active material particles 10, which are to be impregnated with electrolyte, may be added, for example, in method step a) to the ion-conducting liquid, the ion-conducting liquid being absorbed in the pores of porous active material particles 10 and porous active material particles 10 being impregnated in this way. FIG. 1 illustrates that the open pores of porous active material particles 11, 12, in relation to the total pore volume of the open pores of porous active material particles 11, 12, are filled to 50 vol. %, in particular essentially completely, with the ion-conducting liquid, which in particular contains monomers 1 and/or oligomers, and thus with an electrolyte, for example, a single-ion-conducting polyelectrolyte and/or oligoelectrolyte. Finally, for example, in a method step b) (not shown in the figures), a solid electrode 100, which is shown in FIG. 3, may be formed from such impregnated active material particles 11, 12 by adding at least one solid electrolyte 20.

    [0183] Monomers 1 and/or oligomers may be dissolved in the liquid containing monomers and/or oligomers, for example, jointly with a polymerization initiator and/or cross-linking initiator and/or linking initiator in at least one solvent. In particular, if monomers 1 and/or oligomers do not have any lithium conducting salt functionalization themselves, in particular at least one conducting salt, for example, lithium conducting salt, may additionally be dissolved in the ion-conducting liquid. If oligomers are used, these may in particular have a size adapted to the pore size of porous active material particles 10 and/or a molecular weight adapted thereto. If the oligomers themselves do not have a lithium conducting salt functionalization, they may be used, for example, in the form of an oligomer/salt mixture.

    [0184] FIG. 1 illustrates that within the scope of one embodiment, monomers 1 and/or oligomers are polymerized and/or cross-linked in a method step a). FIG. 1 illustrates that polymer electrolyte 2 and/or oligomer electrolyte, which is formed from monomers 1 and/or oligomers, may advantageously extend from the opening surfaces of the outermost pores of porous active material particles 10, 11, 12 down into pores located deep inside and through porous active material particles 10, 11, 12.

    [0185] FIG. 2 illustrates that in a conventional manufacturing method, in which porous active material particles 10 are applied together with a polymer electrolyte 2, for example, in a paste process using a solvent-based paste, which includes porous active material particles 10 and polymer electrolyte 2, or in a solvent-free dry mixture process, polymer electrolyte 2 may only fill a very small volume proportion of the total pore volume of the open pores of porous active material particles 10. This may be due to the fact that the coil size of polymer electrolyte 2 exceeds the pore size of the open pores of porous active material particles 10, so that polymer electrolyte 2 may only be introduced partially into the outermost open pores. In the case of a paste process, free pore volume may additionally be created upon removal of the solvent. In the case of a dry mixture process, this may additionally be caused by an excessively high viscosity of polymer electrolyte 2. As a result of the mechanical properties, in particular the high viscosity, of pure polymer electrolytes 2, polymer electrolyte 2 may also only be pressed to a slight depth in the direction of the interior of particles 10 by subsequent calendering and compacting of the electrodes, even at temperatures above the softening temperature, andas illustrated in FIG. 2only open, broad pores on the surface of particles 10 are closed.

    [0186] FIG. 3 shows that solid electrode 100within the scope of the specific embodiment shown thereinincludes impregnated active material particles 11, 12, which are manufactured as explained in conjunction with FIG. 1, and a solid electrolyte 20 and a conductive additive 30.