4.8 Article

Reversible calcium alloying enables a practical room-temperature rechargeable calcium-ion battery with a high discharge voltage

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NATURE CHEMISTRY
卷 10, 期 6, 页码 667-672

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41557-018-0045-4

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资金

  1. National Natural Science Foundation of China [51302238]
  2. Shenzhen Peacock Plan [KQJSCX20170331161244761, KQTD2016112915051055]
  3. Natural Science Foundation of Guangdong Province [2017A030310482]
  4. Shenzhen Science and Technology Planning Project [JCYJ20160122143155757, JSGG20160301173854530, JSGG20160301155933051, JSGG20160229202951528, JCYJ20170307171232348, JCYJ20170307172850024, JSGG20170413153302942]
  5. Guangdong Engineering Technology Research Center Foundation [20151487]
  6. Shenzhen Engineering Laboratory Foundation [20151837]
  7. Scientific Equipment Project of the Chinese Academy of Sciences [GJHS20170314161200165, yz201440]

向作者/读者索取更多资源

Calcium-ion batteries (CIBs) are attractive candidates for energy storage because Ca2+ has low polarization and a reduction potential (-2.87 V versus standard hydrogen electrode, SHE) close to that of Li+ (-3.04 V versus SHE), promising a wide voltage window for a full battery. However, their development is limited by difficulties such as the lack of proper cathode/anode materials for reversible Ca2+ intercalation/de-intercalation, low working voltages (<2 V), low cycling stability, and especially poor room-temperature performance. Here, we report a CIB that can work stably at room temperature in a new cell configuration using graphite as the cathode and tin foils as the anode as well as the current collector. This CIB operates on a highly reversible electrochemical reaction that combines hexafluorophosphate intercalation/de-intercalation at the cathode and a Ca-involved alloying/de-alloying reaction at the anode. An optimized CIB exhibits a working voltage of up to 4.45 V with capacity retention of 95% after 350 cycles.

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