Crystal regulation towards rechargeable magnesium battery cathode materials

Rechargeable magnesium batteries (RMBs) as a promising energy storage system in terms of high abundance, greater electron transfer number and more uniform deposition behavior of the Mg metal anode have great potential for innovating the future energy storage markets. However, the large intercalation...

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Bibliographic Details
Published inMaterials horizons Vol. 7; no. 8; pp. 1971 - 1995
Main Authors Tan, Shuangshuang, Xiong, Fangyu, Wang, Junjun, An, Qinyou, Mai, Liqiang
Format Journal Article
LanguageEnglish
Published Cambridge Royal Society of Chemistry 01.01.2020
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Summary:Rechargeable magnesium batteries (RMBs) as a promising energy storage system in terms of high abundance, greater electron transfer number and more uniform deposition behavior of the Mg metal anode have great potential for innovating the future energy storage markets. However, the large intercalation energy penalty and sluggish diffusion kinetics of bivalent Mg 2+ in host materials due to the strong ionic polarization lead to unsatisfactory energy and power densities. Thus, constructing insertion sites and fast diffusion pathways for Mg 2+ in cathode materials is significant for the development of RMBs. Herein, we systematically reviewed the recent developments of various crystal regulation strategies, including topochemical substitution, interlayer regulation, vacancy introduction, substitution doping, and amorphization, for improving the specific capacity, rate capability, redox potential and cycling stability of RMB cathode materials. The optimized mechanisms and regulation rules of various strategies for Mg 2+ intercalation and diffusion were discussed in detail. The unique advantages of various strategies and the promising crystal systems were summarized. Moreover, the unexploited material systems, the untapped crystal regulation strategies, the current challenges and future objectives for high-energy and high-power RMBs are described. Crystal regulation as the "key" powerfully unlocks the "crystal house" for fast and stable Mg ion migration and storage.
ISSN:2051-6347
2051-6355
DOI:10.1039/d0mh00315h