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用于无阳极锂金属电池的激光诱导氧化硅

Laser-Induced Silicon Oxide for Anode-Free Lithium Metal Batteries.

作者信息

Chen Weiyin, Salvatierra Rodrigo V, Ren Muqing, Chen Jinhang, Stanford Michael G, Tour James M

机构信息

Chemistry Department, Rice University, 6100 Main ST MS 60, Houston, TX, 77005, USA.

Department of Materials Science and NanoEngineering, Smalley-Curl Institute and The NanoCarbon Center, Rice University, 6100 Main ST MS 222, Houston, TX, 77005, USA.

出版信息

Adv Mater. 2020 Aug;32(33):e2002850. doi: 10.1002/adma.202002850. Epub 2020 Jul 9.

DOI:10.1002/adma.202002850
PMID:32643237
Abstract

The development of a rechargeable Li metal anode (LMA) is an important milestone for improved battery technology. Practical issues hindering LMAs are the formation of Li dendrites and inactive Li during plating and stripping processes, which can cause short circuits, thermal runaway, and low coulombic efficiency (CE). Here, the use of a laser-induced silicon oxide (LI-SiO ) layer derived from a commercial adhesive tape to improve the reversibility of Li metal batteries (LMBs) is studied. The silicone-based adhesive of the tape is converted by a commercial infrared laser into a homogeneous porous SiO layer deposited directly over the current collector. The coating results in superior performance by suppressing the formation of Li dendrites and inactive Li and presenting higher average CE of 99.3% (2.0 mAh cm at 2.0 mA cm ) compared to bare electrodes. The thickness and morphology of the deposited Li is investigated, revealing a different mechanism of Li deposition on coated electrodes. The laser coating affords a method that is fast and avoids the use of toxic organic solvents and extensive drying times. The improved performance with the SiO coating is demonstrated in LMB with a zero-excess ("anode-free") configuration where a 100% improved performance is verified.

摘要

可充电锂金属阳极(LMA)的发展是电池技术改进的一个重要里程碑。阻碍LMA实际应用的问题是在电镀和剥离过程中锂枝晶和无活性锂的形成,这可能导致短路、热失控和低库仑效率(CE)。在此,研究了使用由商业胶带衍生的激光诱导氧化硅(LI-SiO)层来提高锂金属电池(LMB)的可逆性。胶带的有机硅基粘合剂通过商用红外激光转化为直接沉积在集流体上的均匀多孔SiO层。与裸电极相比,该涂层通过抑制锂枝晶和无活性锂的形成以及呈现99.3%的更高平均CE(在2.0 mA cm²时为2.0 mAh cm²)而具有卓越性能。研究了沉积锂的厚度和形态,揭示了锂在涂覆电极上沉积的不同机制。激光涂层提供了一种快速的方法,避免了使用有毒有机溶剂和长时间干燥。在具有零过量(“无阳极”)配置的LMB中展示了SiO涂层的改进性能,其中验证了性能提高了100%。

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