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Ag-modified hydrogen titanate nanowire arrays for stable lithium metal anode in a carbonate-based electrolyte

机译:碳酸盐基电解质中稳定锂金属阳极的Ag改性氢纳米线阵列

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摘要

In the investigation of the next-generation battery anode,Li metal has attracted increasing attention owing to its ultrahigh specific capacity and low reduction potential.However,its low columbic efficiency,limited cycling life,and serious safety hazards have hindered the practical application of rechargeable Li metal batteries.Although several strategies have been proposed to enhance the electrochemical performance of Li metal anodes,most are centered around ether-based electrolytes,which are volatile and do not provide a sufficiently large voltage window.Therefore,we aimed to attain stable Li deposition/stripping in a commercial carbonate-based electrolyte.Herein,we have successfully synthesized hydrogen titanate(HTO)nanowire arrays decorated with homogenous Ag nanoparticles(NPs)(Ag@HTO)via simple hydrothermal and silver mirror reactions.The 3 D cross-linked array structure with Ag NPs provides preferable nucleation sites for uniform Li deposition,and most importantly,when assembled with the commercial LiNi_(0.5)Co0.2Mn_(0.3)O_(2) cathode material,the Ag@HTO could maintain a capacity retention ratio of 81.2% at 1 C after 200 cycles,however the pristine Ti foil failed to do so after only 60 cycles.Our research therefore reveals a new way of designing current collectors paired with commercial high voltage cathodes that can create high energy density Li metal batteries.
机译:在调查下一代电池阳极时,由于其超高的特定容量和低减少电位,Li金属引起了越来越多的关注。然而,其低牙牙效率,限制循环寿命和严重的安全危害已经阻碍了可充电的实际应用李金属电池。虽然提出了几种策略来增强Li金属阳极的电化学性能,但大多数是围绕醚基电解质的中心,这是挥发性的,并且不提供足够大的电压窗口。因此,我们的目标是达到稳定的李在商业碳酸盐的电解质中沉积/汽提。通过简单的水热和银镜反应,我们已成功合成钛酸盐(HTO)纳米线阵列(Ag @ HTO),通过简单的水热和银镜反应。3 D交叉具有AG NPS的连接阵列结构为均匀的LI沉积提供优选的成核位置,并且最重要的是在组装时随着商用LINI_(0.5)CO0.2MN_(0.3)O_(2)正极材料,AG @ HTO在200次循环后的容量保持比率为81.2%,但原始TI箔未能这样做因此,只有60个周期。因此,研究了一种设计与商业高压阴极配对的新方法,可以产生高能量密度Li金属电池。

著录项

  • 来源
    《能源化学:英文版》 |2021年第003期|P.282-290|共9页
  • 作者单位

    State Key Lab of Physical Chemistry of Solid Surfaces Collaborative fnnovation Centre of Chemistry for Energy Materials State-Province JointEngineering Laboratory of Power Source Technology for New Energy Vehicle Engineering Research Center of Electrochemical Technology Ministiy of Education College of Chemistiy and Chemical Enginesring Xiamen University Xiamen 361005 Fujian China;

    State Key Lab of Physical Chemistry of Solid Surfaces Collaborative fnnovation Centre of Chemistry for Energy Materials State-Province JointEngineering Laboratory of Power Source Technology for New Energy Vehicle Engineering Research Center of Electrochemical Technology Ministiy of Education College of Chemistiy and Chemical Enginesring Xiamen University Xiamen 361005 Fujian China;

    State Key Lab of Physical Chemistry of Solid Surfaces Collaborative fnnovation Centre of Chemistry for Energy Materials State-Province JointEngineering Laboratory of Power Source Technology for New Energy Vehicle Engineering Research Center of Electrochemical Technology Ministiy of Education College of Chemistiy and Chemical Enginesring Xiamen University Xiamen 361005 Fujian China;

    College of Energy&School of Energy Research Xiamen University Xiamen 361102 Fujian China;

    College of Energy&School of Energy Research Xiamen University Xiamen 361102 Fujian China;

    School of Chemical Engineering cmd Light Industry Guangdong University of Technology Guangzhou 510006 Cuangdong China;

    State Key Lab of Physical Chemistry of Solid Surfaces Collaborative fnnovation Centre of Chemistry for Energy Materials State-Province JointEngineering Laboratory of Power Source Technology for New Energy Vehicle Engineering Research Center of Electrochemical Technology Ministiy of Education College of Chemistiy and Chemical Enginesring Xiamen University Xiamen 361005 Fujian China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 工程材料学;
  • 关键词

    Hydrogen titanate nanowire arrays; Ag nanoparticles; Li metal anode; Carbonate-based electrolyte;

    机译:钛酸盐纳米线阵列;Ag纳米粒子;Li金属阳极;基于碳酸盐的电解质;
  • 入库时间 2022-08-19 04:56:59
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