4.8 Review

Emerging Organic Surface Chemistry for Si Anodes in Lithium-Ion Batteries: Advances, Prospects, and Beyond

期刊

ADVANCED ENERGY MATERIALS
卷 12, 期 32, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.202200924

关键词

lithium-ion batteries; polymer binders; Si anodes; solid electrolyte interfaces; surface chemistry

资金

  1. Natural Science Foundation of China [NSFC-51702223]
  2. International Collaborative Project of Chengdu [2019-GH02-00031-HZ]
  3. DFG, Germany [CRC 953]
  4. BMBF-MSRT, Germany [01DK20097-CAlSAB]

向作者/读者索取更多资源

This review discusses the ongoing efforts in tailoring the surfaces of silicon particles to minimize changes to their integral structure during the cycle in lithium-ion batteries. The emerging organic moieties on silicon offer new ways to tune the interactions with battery components and stabilize the silicon. The review highlights the important role of organic components and provides successful examples of tailored interactions with electrolytes, binders, and conductive agents.
Due to its uniquely high specific capacity and natural abundance, silicon (Si) anode for lithium-ion batteries (LIBs) has reaped intensive research from both academic and industrial sectors. This review discusses the ongoing efforts in tailoring Si particle surfaces to minimize the cycle-induced changes to the integral structure of particles or electrodes. As an upgrade or alternative to conventional coatings (e.g., carbons), the emerging organic moieties on Si offer new avenues toward tuning the interactions with various battery components that are key to electrochemical performances. The recent progress on understanding Si surfaces is reviewed with an emphasis on newly emerged diagnostic tools, which increasingly points to the critical role of organic components in stabilizing Si. The detailed analysis on the chemistry-structure-performance relationships in Si surface are discussed and the successful cases demonstrating the functions of the organic layers are provided, that is, via tailored interactions toward electrolyte or binder or conductive agents, are recapped. Various synthetic strategies for designing the surface organic layers are discussed and compared, highlighting the versatility and tunability of surface organic chemistry. The holistic considerations and promising research directions are summarized, shedding light on in-depth understanding and engineering Si surface chemistry toward practical LIBs application.

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