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Revisiting the Roles of Natural Graphite in Ongoing Lithium-Ion Batteries

期刊

ADVANCED MATERIALS
卷 34, 期 18, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202106704

关键词

flake graphite; graphene; lithium-ion batteries; microcrystalline graphite; natural graphite-based anodes

资金

  1. National Key Research and Development Program of China [2021YFF0500600]
  2. National Natural Science Foundation of China [U2001220]
  3. Local Innovative Research Teams Project of Guangdong Pearl River Talents Program [2017BT01N111]
  4. Shenzhen Technical Plan Project [RCJC20200714114436091, JCYJ20180508152135822]
  5. Shenzhen All-Solid-State Lithium Battery Electrolyte Engineering Research Centre [XMHT20200203006]

向作者/读者索取更多资源

This article provides a comprehensive overview of the origin, roles, and research progress of NG-based materials in ongoing LIBs. It covers the structure, properties, electrochemical performance, modification methods, derivatives, composites, and applications of NG. The strategies to improve their high-rate and low-temperature charging performance are also discussed, along with prospects for the development and future applications of NG-based materials.
Graphite, commonly including artificial graphite and natural graphite (NG), possesses a relatively high theoretical capacity of 372 mA h g(-1) and appropriate lithiation/de-lithiation potential, and has been extensively used as the anode of lithium-ion batteries (LIBs). With the requirements of reducing CO2 emission to achieve carbon neutral, the market share of NG anode will continue to grow due to its excellent processability and low production energy consumption. NG, which is abundant in China, can be divided into flake graphite (FG) and microcrystalline graphite (MG). In the past 30 years, many researchers have focused on developing modified NG and its derivatives with superior electrochemical performance, promoting their wide applications in LIBs. Here, a comprehensive overview of the origin, roles, and research progress of NG-based materials in ongoing LIBs is provided, including their structure, properties, electrochemical performance, modification methods, derivatives, composites, and applications, especially the strategies to improve their high-rate and low-temperature charging performance. Prospects regarding the development orientation as well as future applications of NG-based materials are also considered, which will provide significant guidance for the current and future research of high-energy-density LIBs.

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