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用于高能钠金属电池的无枝晶钠金属阳极

Dendrite-Free Sodium-Metal Anodes for High-Energy Sodium-Metal Batteries.

作者信息

Sun Bing, Li Peng, Zhang Jinqiang, Wang Dan, Munroe Paul, Wang Chengyin, Notten Peter H L, Wang Guoxiu

机构信息

Centre for Clean Energy Technology, University of Technology Sydney, Broadway, Sydney, NSW, 2007, Australia.

College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing, Jiangsu, 210016, China.

出版信息

Adv Mater. 2018 May 31:e1801334. doi: 10.1002/adma.201801334.

Abstract

Sodium (Na) metal is one of the most promising electrode materials for next-generation low-cost rechargeable batteries. However, the challenges caused by dendrite growth on Na metal anodes restrict practical applications of rechargeable Na metal batteries. Herein, a nitrogen and sulfur co-doped carbon nanotube (NSCNT) paper is used as the interlayer to control Na nucleation behavior and suppress the Na dendrite growth. The N- and S-containing functional groups on the carbon nanotubes induce the NSCNTs to be highly "sodiophilic," which can guide the initial Na nucleation and direct Na to distribute uniformly on the NSCNT paper. As a result, the Na-metal-based anode (Na/NSCNT anode) exhibits a dendrite-free morphology during repeated Na plating and striping and excellent cycling stability. As a proof of concept, it is also demonstrated that the electrochemical performance of sodium-oxygen (Na-O ) batteries using the Na/NSCNT anodes show significantly improved cycling performances compared with Na-O batteries with bare Na metal anodes. This work opens a new avenue for the development of next-generation high-energy-density sodium-metal batteries.

摘要

钠(Na)金属是下一代低成本可充电电池最具潜力的电极材料之一。然而,钠金属阳极上枝晶生长所带来的挑战限制了可充电钠金属电池的实际应用。在此,氮硫共掺杂碳纳米管(NSCNT)纸被用作中间层来控制钠的成核行为并抑制钠枝晶生长。碳纳米管上含氮和硫的官能团使NSCNT具有高度的“亲钠性”,这能够引导初始钠成核并使钠在NSCNT纸上均匀分布。结果,基于钠金属的阳极(Na/NSCNT阳极)在反复的钠电镀和脱镀过程中呈现无枝晶形态以及优异的循环稳定性。作为概念验证,还证明了与使用裸钠金属阳极的钠氧(Na-O)电池相比,使用Na/NSCNT阳极的钠氧电池的电化学性能在循环性能方面有显著改善。这项工作为下一代高能量密度钠金属电池的发展开辟了一条新途径。

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