材料科学
锂(药物)
电解质
无定形固体
枝晶(数学)
金属锂
纳米技术
微观结构
化学物理
电极
化学工程
复合材料
化学
结晶学
物理化学
几何学
数学
内分泌学
医学
工程类
作者
Asghar Aryanfar,Daniel J. Brooks,Tao Cheng,Boris V. Merinov,William A. Goddard,A. J. Colussi,Michael R. Hoffmann
出处
期刊:Meeting abstracts
日期:2015-04-29
卷期号:MA2015-01 (15): 1154-1154
被引量:3
标识
DOI:10.1149/ma2015-01/15/1154
摘要
One of the most critical issues leading to failure in researchable batteries is the tendency to grow amorphous crystals called dendrites during charge periods . These microstructures cause the internal short circuit between electrodes and lead to possible ignition of organic electrolytes.[1] Lithium batteries, particularly are more prone to form dendrites due to low surface energy of lithium. The tendency for creating more surfaces leads to formation of isolated dendrites known as dead lithium . Particularly rechargeable lithium metal batteries suffer the most from this matter due to dominance of deposition over intercalation on crystalline and compact structure of the metal. [2] Herein, we present a new three dimensional framework, extended from our previous Coarse Grained method[3], for predicting the intrinsic properties and internal structure of meta-stable lithium dendrites. A sample of dendrite is given in Fig. 1. We have investigated annealing of dendrites in various temperatures, resulting in stable atomic arrangements. (Fig. 2). We will characterize the physical and mechanical properties of acquired morphologies, such as porosity and compressive strength. 1. Armand, M. and J.M. Tarascon, Building better batteries. Nature, 2008. 451 (7179): p. 652-657. 2. Li, Z., et al., A review of lithium deposition in lithium-ion and lithium metal secondary batteries. Journal of Power Sources, 2014. 254 : p. 168-182. 3. Aryanfar, A., et al., Dynamics of Lithium Dendrite Growth and Inhibition-Pulse Charging Experiments and Monte Carlo Calculations. The Journal of Physical Chemistry Letters, 2014. Figure 1
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