THERMAL RESPONSIVE ELECTRODE STRUCTURE FOR LITHIUM-ION BATTERIES
20220166085 · 2022-05-26
Inventors
- Zhengfu QIU (Hong Kong, HK)
- Wing Lung HON (Hong Kong, HK)
- Yuen Yung Chan (Hong Kong, HK)
- Cheuk Yin LEE (Hong Kong, HK)
- Shengbo LU (Hong Kong, CN)
- Chi Ho KWOK (Hong Kong, CN)
- Chenmin LIU (Hong Kong, CN)
Cpc classification
H01M4/13
ELECTRICITY
H01M10/653
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M10/0525
ELECTRICITY
H01M10/654
ELECTRICITY
International classification
H01M10/653
ELECTRICITY
H01M10/0525
ELECTRICITY
H01M10/654
ELECTRICITY
Abstract
The present invention provides a thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery. The electrode includes polymer particles including at least one connection unit and at least one crosslinker in an amount of approximately 40% to 98% by weight and at least one binder material in an amount of approximately from 2% to 60% by weight. The consolidated crosslinked polymer particle coating results in a porous structure encapsulating the electrode. The pressure resistance of the consolidated crosslinked polymer particle coating ranges approximately from 0.5 to 8 MPa and the consolidated crosslinked polymer particle coating is decomposed to release a non-flammable gas and phosphorous-containing molecules so as to prevent thermal runaway at a temperature approximately from 300° C. to 500° C.
Claims
1. A thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery comprising: an electrode selected from a cathode including a lithium-based material selected from the group consisting of lithium manganese oxide (LMO), lithium cobalt oxide (LCO), lithium nickel manganese cobalt oxide (NMC), and lithium iron phosphate (LFP), or an anode selected from the group consisting of graphene, graphite, lithium titanate (LTO), a silicon compound, a silicon carbon composite, a tin-containing compound, and a tin-based composite; a consolidated crosslinked polymer particle coating forming a porous structure encapsulating the electrode, the consolidated crosslinked polymer particle coating comprising: a plurality of polymer particles including at least one connection unit and at least one crosslinker, wherein the at least one connection unit and the at least one crosslinker have at least one cyclic compound analogue structure including one or more non-flammable gas units and phosphorous-containing units; at least one binder material in an amount of approximately 2% to 60% by weight; wherein the polymer particles are in an amount of approximately 40% to 98% by weight; wherein the at least one crosslinker is in an amount of approximately from 25% to 50% by weight of the polymer particles; wherein the diameter of the polymer particle is approximately from 0.05 μm to 8 μm; wherein the pressure resistance of the consolidated crosslinked polymer particle coating ranges approximately from 0.5 to 8 MPa; wherein the consolidated crosslinked polymer particle coating is decomposed to release a non-flammable gas and phosphorous-containing molecules so as to prevent fire and thermal runaway at a temperature approximately from 300° C. to 500° C.
2. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the shape of the polymer particles includes regular-shaped spherical particles, irregular-shaped particles, rods, tubes and tubes.
3. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the thickness of the consolidated crosslinked polymer particle coating is approximately from 3 μm to 40 μm.
4. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the binder is selected from the group consisting of polyvinylidene fluoride (PVDF), Poly(acrylic acid) (PAA), Polyurethane (PU), poly(methyl methacrylate) (PMMA), poly(vinylidene fluoride-hexafluoroprolene) (PVDF-HFP), polyacrylonitrile (PAN), poly(vinyl alcohol) (PVA), cellulose.
5. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the non-flammable gas unit and phosphorous-containing unit further includes elements selected from P, N, Cl, S, O, F, Br, C, Si and Al.
6. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the connection unit is cyclotriphosphazene.
7. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the crosslinker is selected from the group consisting of sulfonyldiphenol, bisphenol AF and melamine.
8. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the consolidated crosslinked polymer particle coating is fabricated by methods selected from ultrasonic spraying, electrostatic spraying, doctor blade coating, slit coating, micro gravure coating and spin coating.
9. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the consolidated crosslinked polymer particle coating has a porosity of approximately 25% to 80%.
10. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the non-flammable gas includes nitrogen, ammonia, carbon dioxide, sulfur dioxide and water vapor.
11. The thermally-decomposable consolidated polymer particle encapsulated-electrode for a lithium-ion battery of claim 1, wherein the phosphorous-containing molecules include phosphorous based free radicals (e.g., PO., PO.sub.2., HPO.sub.2., etc.), phosphonic acid derivatives and polyphosphoric acid derivatives.
12. A lithium-ion battery comprising the thermally-decomposable consolidated polymer particle encapsulated-electrode of claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Embodiments of the present invention are described in more detail hereinafter with reference to the drawings.
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DEFINITION
[0046] References in the specification to “one embodiment”, “an embodiment”, “an example embodiment”, etc., indicate that the embodiment described can include a particular feature, structure, or characteristic, but every embodiment may not necessarily include the particular feature, structure, or characteristic. Moreover, such phrases are not necessarily referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with an embodiment, it is submitted that it is within the knowledge of one skilled in the art to affect such feature, structure, or characteristic in connection with other embodiments whether or not explicitly described.
[0047] The terms “a” or “an” are used to include one or more than one and the term “or” is used to refer to a nonexclusive “or” unless otherwise indicated. In addition, it is to be understood that the phraseology or terminology employed herein, and not otherwise defined, is for the purpose of description only and not of limitation. Furthermore, all publications, patents, and patent documents referred to in this document are incorporated by reference herein in their entirety, as though individually incorporated by reference. In the event of inconsistent usages between this document and those documents so incorporated by reference, the usage in the incorporated reference should be considered supplementary to that of this document; for irreconcilable inconsistencies, the usage in this document controls.
DETAILED DESCRIPTION
[0048] In the following description, many specific details are set forth for fully understanding of the present invention, but the present invention can also be implemented in other ways different from those described here, and those skilled in the art can make similar applications without departing from the scope of the present invention, Therefore the present invention should not be limited by the specific embodiments disclosed below.
[0049] The present invention provides an electrode encapsulated by a thermally-decomposable consolidated polymer particle for a lithium-ion battery. Advantageously, the consolidated crosslinked polymer particle coating forms a porous structure encapsulating the electrode and is able to decompose to release a non-flammable gas and phosphorous-containing molecules so as to prevent fire and thermal runaway at a temperature approximately from 300° C. to 500° C.
[0050] As shown in
[0051] In addition, the electrode of the present invention comprises a cathode or an anode, wherein the cathode includes a lithium-based material selected from the group consisting of lithium manganese oxide (LMO), lithium cobalt oxide (LCO), lithium nickel Manganese cobalt oxide (NMC), and lithium iron phosphate (LFP) and the anode is selected from the group consisting of graphene, graphite, lithium titanate (LTO), a silicon compound, a silicon carbon composite, a tin-containing compound, and a tin-based composite. Meanwhile, the coated layer, i.e. the consolidated crosslinked polymer particle, comprises polymer particles in an amount of approximately from 40% to 98% by weight and at least one binder material in an amount of approximately from 2% to 60% by weight. The polymer particles include at least one connection unit and at least one crosslinker, in which the connection unit and the crosslinker have at least one cyclic compound analogue structure with one or more non-flammable gas unit and phosphorous-containing unit. Referring to
[0052] In addition, due to the presence of the non-flammable gas unit and phosphorous-containing unit, the coated layer of the present invention improves the safety of the battery and is able to avoid thermal runaway at a temperature approximately from 300° C. to 500° C. The non-flammable gas unit and phosphorous-containing unit further include one or more elements, but not limited to, P, N, Cl, S, 0, F, Br, C, Si and Al. As shown in
Example
[0053] In order to realize the thermal effects of the polymer particles, PCPS particles with an average particle size of approximately 0.6 μm have been heated gradually from room temperature to about 350° C. to obtain a DSC curve as shown in
[0054] Referring to
[0055] Referring to
[0056] The C-rate performance of a coin cell with or without the coated layer are also tested. As shown in
[0057] Furthermore, as shown in Table 1, nail penetration test has been performed on the pouch cell without or with a layer of PCPS particles in various thicknesses on the LCO cathode thereof, i.e., 20, 24, and 28 μm, wherein the pouch cell is 461045-type pouch cell with a volumetric energy density higher than 450 WL.sup.−1, voltage: 3.0V-4.35V, fully charged (100% SOC), LCO mass loading: 25.5 mgcm.sup.−1, graphite mass loading: 11.7 mg cm.sup.−1, separator thickness: 7 μm, electrolyte: 1 M LiPF.sub.6 EC-DEC-DMC=1:1:1 (by volume), PCPS particle size: approximately 0.6 μm.
[0058] Referring to
TABLE-US-00001 TABLE 1 The results of nail penetration test for assembly of LiCoO.sub.2 (LCO)/graphite full cell Thickness of PCPS Sample coated layer (μm) Leakage Smoke Fire Results With PCPS 28 No NO NO 3/3 pass coated layer-1 With PCPS 20 No NO NO coated layer-2 With PCPS 24 No NO NO coated layer-3 Without PCPS — Yes Yes Yes 0/3 pass coated layer-1 Without PCPS — Yes Yes Yes coated layer-2 Without PCPS — Yes Yes Yes coated layer-3
[0059] As shown in Table 2, short circuit test has been further performed on the pouch cell without or with the coated layer on LCO cathode in various thicknesses, i.e. 14, 21, and 23 μm, wherein the pouch cell is 461045-type pouch cell with a volumetric energy density higher than 450 WL.sup.−1, voltage: 3.0V-4.35V, fully charged (100% SOC), LCO mass loading: 25.5 mgcm.sup.−1, graphite mass loading: 11.7 mg cm.sup.−1, separator thickness: 7 μm, electrolyte: 1 M LiPF.sub.6 EC-DEC-DMC=1:1:1 (by volume), PCPS particle size: approximately 0.6 μm.
[0060] Referring to
TABLE-US-00002 TABLE 2 The results of short circuit test for assembly of LiCoO.sub.2 (LCO)/graphite full cell Thickness of PCPS Sample coated layer (μm) Leakage Smoke Fire Results With PCPS 14 No NO NO 3/3 pass coated layer-1 With PCPS 21 No NO NO coated layer-2 With PCPS 23 No NO NO coated layer-3 Without PCPS — Yes Yes Yes 0/3 pass coated layer-1 Without PCPS — Yes Yes Yes coated layer-2 Without PCPS — Yes Yes Yes coated layer-3
[0061] It will be appreciated by those skilled in the art, in view of these teachings, that alternative embodiments may be implemented without deviating from the spirit or scope of the invention, as set forth in the appended claims. This invention is to be limited only by the following claims, which include all such embodiments and modifications when viewed in conjunction with the above specification and accompanying drawings.