GSTDTAP  > 地球科学
DOI10.1038/s41586-020-1972-y
Li metal deposition and stripping in a solid-state battery via Coble creep
Helmrich, S.1; Arias, A.1,2,3,4; Lochead, G.1,2,3,4; Wintermantel, T. M.1,2,3,4; Buchhold, M.5,6; Diehl, S.7; Whitlock, S.1,2,3,4
2020-01-15
发表期刊NATURE
ISSN0028-0836
EISSN1476-4687
出版年2020
卷号578期号:7794页码:251-+
文章类型Article
语种英语
国家USA; Peoples R China; Australia
英文关键词

Solid-state lithium metal batteries require accommodation of electrochemically generated mechanical stress inside the lithium: this stress can be(1,2) up to 1 gigapascal for an overpotential of 135 millivolts. Maintaining the mechanical and electrochemical stability of the solid structure despite physical contact with moving corrosive lithium metal is a demanding requirement. Using in situ transmission electron microscopy, we investigated the deposition and stripping of metallic lithium or sodium held within a large number of parallel hollow tubules made of a mixed ionic-electronic conductor (MIEC). Here we show that these alkali metals-as single crystals-can grow out of and retract inside the tubules via mainly diffusional Coble creep along the MIEC/metal phase boundary. Unlike solid electrolytes, many MIECs are electrochemically stable in contact with lithium (that is, there is a direct tie-line to metallic lithium on the equilibrium phase diagram), so this Coble creep mechanism can effectively relieve stress, maintain electronic and ionic contacts, eliminate solid-electrolyte interphase debris, and allow the reversible deposition/stripping of lithium across a distance of 10 micrometres for 100 cycles. A centimetre-wide full cell-consisting of approximately 10(10) MIEC cylinders/solid electrolyte/LiFePO4-shows a high capacity of about 164 milliampere hours per gram of LiFePO4, and almost no degradation for over 50 cycles, starting with a 1x excess of Li. Modelling shows that the design is insensitive to MIEC material choice with channels about 100 nanometres wide and 10-100 micrometres deep. The behaviour of lithium metal within the MIEC channels suggests that the chemical and mechanical stability issues with the metal-electrolyte interface in solid-state lithium metal batteries can be overcome using this architecture.


By containing lithium metal within oriented tubes of a mixed ionic-electronic conductor, a 3D anode for lithium metal batteries is produced that overcomes chemomechanical stability issues at the electrolyte interface.


领域地球科学 ; 气候变化 ; 资源环境
收录类别SCI-E
WOS记录号WOS:000510822400001
WOS关键词BLOCK-COPOLYMER ELECTROLYTE ; LITHIUM METAL ; HIGH-CAPACITY ; GROWTH ; ANODE
WOS类目Multidisciplinary Sciences
WOS研究方向Science & Technology - Other Topics
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/281295
专题地球科学
资源环境科学
气候变化
作者单位1.Heidelberg Univ, Phys Inst, Heidelberg, Germany;
2.Univ Strasbourg, Inst Sci & Ingn Supramol ISIS, UMR 7006, Strasbourg, France;
3.CNRS, Strasbourg, France;
4.Univ Strasbourg, IPCMS, UMR 7504, Strasbourg, France;
5.CALTECH, Dept Phys, Pasadena, CA 91125 USA;
6.CALTECH, Inst Quantum Informat & Matter, Pasadena, CA 91125 USA;
7.Univ Cologne, Inst Theoret Phys, Cologne, Germany
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GB/T 7714
Helmrich, S.,Arias, A.,Lochead, G.,et al. Li metal deposition and stripping in a solid-state battery via Coble creep[J]. NATURE,2020,578(7794):251-+.
APA Helmrich, S..,Arias, A..,Lochead, G..,Wintermantel, T. M..,Buchhold, M..,...&Whitlock, S..(2020).Li metal deposition and stripping in a solid-state battery via Coble creep.NATURE,578(7794),251-+.
MLA Helmrich, S.,et al."Li metal deposition and stripping in a solid-state battery via Coble creep".NATURE 578.7794(2020):251-+.
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