Conductivity and lithiophilicity gradients guide lithium deposition to mitigate short circuits

被引:0
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作者
Jun Pu
Jiachen Li
Kai Zhang
Tao Zhang
Chaowei Li
Haixia Ma
Jia Zhu
Paul V. Braun
Jun Lu
Huigang Zhang
机构
[1] Nanjing University,National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Collaborative Innovation Center of Advanced Microstructures, and Institute of Materials Engineering
[2] Northwest University,School of Chemical Engineering
[3] University of Chinese Academy of Sciences,Key Lab of Nanodevices and Applications, Suzhou Institute of Nanotech and Nanobionics, Chinese Academy of Sciences
[4] Argonne National Laboratory,Chemical Sciences and Engineering Division
[5] University of Illinois at Urbana-Champaign,Department of Materials Science and Engineering, Frederick Seitz Materials Research Laboratory, Beckman Institute for Advanced Science and Technology, Department of Chemistry
来源
Nature Communications | / 10卷
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摘要
Lithium metal anodes hold great promise to enable high-energy battery systems. However, lithium dendrites at the interface between anode and separator pose risks of short circuits and fire, impeding the safe application. In contrast to conventional approaches of suppressing dendrites, here we show a deposition-regulating strategy by electrically passivating the top of a porous nickel scaffold and chemically activating the bottom of the scaffold to form conductivity/lithiophilicity gradients, whereby lithium is guided to deposit preferentially at the bottom of the anode, safely away from the separator. The resulting lithium anodes significantly reduce the probability of dendrite-induced short circuits. Crucially, excellent properties are also demonstrated at extremely high capacity (up to 40 mAh cm−2), high current density, and/or low temperatures (down to −15 °C), which readily induce dendrite shorts in particular. This facile and viable deposition-regulating strategy provides an approach to preferentially deposit lithium in safer positions, enabling a promising anode for next-generation lithium batteries.
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