Inorganic Chemicals Industry ›› 2021, Vol. 53 ›› Issue (12): 1-13.doi: 10.19964/j.issn.1006-4990.2021-0635

• Inorganic Noval Materials—Carbon Resources Conversion and Utilization •     Next Articles

Study on multiscale rare earths new materials for the dual carbon target

CHEN Kunfeng1(),MA Tianyu2,WANG Anliang3,Zhang Yibo4,XUE Dongfeng5()   

  1. 1. State Key Laboratory of Crystal Materials,Institute of Crystal Materials,Shandong University,Jinan 250100,China
    2. Frontier Institute of Science and Technology,Xi′an Jiaotong University
    3. School of Chemistry and Chemical Engineering, Shandong University
    4. Ganjiang Innovation Academy Chinese Academy of Sciences
    5. Multiscale Crystal Materials Research Center,Shenzhen Institute of Advanced Technology,Chinese Academy of Sciences
  • Received:2021-10-21 Online:2021-12-10 Published:2021-12-16
  • Contact: XUE Dongfeng E-mail:Kunfeng.Chen@sdu.edu.cn;df.xue@siat.ac.cn

Abstract:

China will peak carbon before 2030 and achieve carbon neutrality by 2060,which is our solemn commitment to the international community.Materials are an important substantial foundation for developing carbon reduction technology.By introducing the latest research progress of multiscale rare earth new materials in energy storage,exhaust gas/tail gas catalysis, electrocatalysis and permanent magnet motor,the role of multiscale rare earth new materials in tackling the dual carbon goal was analyzed.Rare earth is an important“industrial vitamin”.The unique role of rare earth in functional materials at the scales of atomic ion,nano/micron and bulk was emphatically introduced.In quantum materials,the latest research progress of rare earth strong correlation solid electrolytes,rare earth superconducting materials and rare earth damping materials also were analysed.It is hoped that the development of new rare earth functional materials will play a role in reducing carbon emissions.

Key words: exhaust gas catalytic materials, battery materials, permanent magnets, electrocatalytic materials, quantum materials

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