Ultrathin two-dimensional atomic crystals as stable interfacial layer for improvement of lithium metal anode

Kai Yan;Hyun Wook Lee;Teng Gao;Guangyuan Zheng;Hongbin Yao;Haotian Wang;Zhenda Lu;Yu Zhou;Zheng Liang;忠范 刘;棣文 朱;Yi Cui

Stanford University;Peking University;SLAC National Accelerator Laboratory

发表时间:2014-10-8

期 刊:Nano Letters

语 言:English

U R L: http://www.scopus.com/inward/record.url?scp=84907861729&partnerID=8YFLogxK

摘要

Stable cycling of lithium metal anode is challenging due to the dendritic lithium formation and high chemical reactivity of lithium with electrolyte and nearly all the materials. Here, we demonstrate a promising novel electrode design by growing two-dimensional (2D) atomic crystal layers including hexagonal boron nitride (h-BN) and graphene directly on Cu metal current collectors. Lithium ions were able to penetrate through the point and line defects of the 2D layers during the electrochemical deposition, leading to sandwiched lithium metal between ultrathin 2D layers and Cu. The 2D layers afford an excellent interfacial protection of Li metal due to their remarkable chemical stability as well as mechanical strength and flexibility, resulting from the strong intralayer bonds and ultrathin thickness. Smooth Li metal deposition without dendritic and mossy Li formation was realized. We showed stable cycling over 50 cycles with Coulombic efficiency ∼97% in organic carbonate electrolyte with current density and areal capacity up to the practical value of 2.0 mA/cm2and 5.0 mAh/cm2, respectively, which is a significant improvement over the unprotected electrodes in the same electrolyte.

关键词

boron nitride
Coulombic efficiency
graphene
Lithium metal anode

相关科学

化学工程
生物工程
化学
工程
机械工程
材料科学
物理学和天文学
凝聚态物理学

被引量

期刊度量

Scopus度量

年份 CiteScore SJR SNIP
1996
1997
1998
1999
2000
2001
2002 2.42 1.713
2003 3.527 2.092
2004 5.347 2.327
2005 6.833 2.84
2006 7.653 3.188
2007 6.963 2.915
2008 7.649 2.931
2009 7.852 2.87
2010 9.38 3.251
2011 20.1 9.832 3.677
2012 21.3 10.269 3.527
2013 22.6 9.081 3.356
2014 22.5 8.268 3.399
2015 22.9 8.359 3.083
2016 22.4 7.893 2.694
2017 22.4 7.447 2.537
2018 21.2 6.211 2.427
2019 20.5 5.786 2.253
2020 19.3 4.853 2.079
2021 15.7

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