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Rational design of stretchable and conductive hydrogel binder for highly reversible SiP2 anode

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摘要 The emerging SiP2with large capacity and suitable plateau is proposed to be the alternative anode for Li-ion batteries.However,typical SiP2still suffers from serious volume expansion and structural destruction,resulting in much Li-consumption and capacity fading.Herein,a novel stretchable and conductive Li-PAA@PEDOT:PSS binder is rationally designed to improve the cyclability and reversibility of SiP2.Interestingly,such Li-PAA@PEDOT:PSS hydrogel enables a better accommodation of volume expansion than PVDF binder(e.g.5.94% vs.68.73% of expansivity).More specially,the SiP2electrode with LiPAA@PEDOT:PSS binder is surprisingly found to enable unexpected structural recombination and selfhealing Li-storage processes,endowing itself with a high initial Coulombic efficiency(ICE) up to 93.8%,much higher than PVDF binder(ICE=70.7%) as well.Such unusual phenomena are investigated in detail for Li-PAA@PEDOT:PSS,and the possible mechanism shows that its Li-PAA component enables to prevent the pulverization of SiP2nanoparticles while the PEDOT:PSS greatly bridges fast electronic connection for the whole electrode.Consequently,after being further composited with carbon matrix,the SiP2/C with LiPAA@PEDOT:PSS hydrogel exhibits high reversibility(ICE> 93%),superior cyclability(>450 cycles),and rate capability(1520 mAh/g at 2000 mA/g) for LIBs.This highly stretchable and conductive binder design can be easily extended to other alloying materials toward advanced energy storage.
出处 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2023年第8期564-573,I0013,共11页 能源化学(英文版)
基金 financially supported by the National Natural Science Foundation of China (22269008 and 52162026) the Hainan Province Science and Technology Special Fund(ZDYF2022SHFZ297) the Hainan Provincial Natural Science Foundation of China (521QN207 and 521RC499) the Hainan University’s Scientific Research Foundation (KYQD(ZR)-21088) the Graduate Innovation Research Project of Hainan(Qhys2021-156) the Guangdong Province Key Discipline Construction Project (2021ZDJS102) the Innovation Team of Universities of Guangdong Province (2022KCXTD030)。
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