...
首页> 外文期刊>Advanced energy materials >Synergistic Effect of 3D Current Collectors and ALD Surface Modification for High Coulombic Efficiency Lithium Metal Anodes
【24h】

Synergistic Effect of 3D Current Collectors and ALD Surface Modification for High Coulombic Efficiency Lithium Metal Anodes

机译:高库仑效率锂金属阳极的3D集流体和ALD表面改性的协同效应

获取原文
获取原文并翻译 | 示例
           

摘要

Improving the performance of Li metal anodes is a critical bottleneck to enable next-generation battery systems beyond Li-ion. However, stability issues originating from undesirable electrode/electrolyte interactions and Li dendrite formation have impaired long-term cycling of Li metal anodes. Herein, a bottom-up fabrication process is demonstrated for a current collector for Li metal electrodeposition and dissolution composed of highly uniform vertically aligned Cu pillars. By rationally controlling geometric parameters of the 3D current collector architecture, including pillar diameter, spacing, and length, the morphology of Li plating/stripping upon cycling can be controlled and optimal cycling performance can be achieved. In addition, it is demonstrated that deposition of an ultrathin layer of ZnO by atomic layer deposition on the current collector surface can facilitate the initial Li nucleation, which dictates the morphology and reversibility of subsequent cycling. This core-shell pillar architecture allows for the effects of geometry and surface chemistry to be decoupled and individually controlled to optimize the electrode performance in a synergistic manner. Using this platform, Li metal anodes are demonstrated with Coulombic efficiency up to 99.5%, providing a pathway toward high-efficiency and long-cycle life Li metal batteries with reduced excess Li loading.
机译:改善锂金属阳极的性能是实现锂离子电池以外的下一代电池系统的关键瓶颈。然而,源于不希望的电极/电解质相互作用和锂枝晶形成的稳定性问题损害了锂金属阳极的长期循环。在此,说明了由高度均匀的垂直排列的Cu柱组成的用于Li金属电沉积和溶解的集电器的自下而上的制造工艺。通过合理地控制3D集电器结构的几何参数,包括柱直径,间距和长度,可以控制循环时Li镀层/剥离层的形态,并可以实现最佳的循环性能。另外,已经证明通过原子层沉积在集电器表面上沉积ZnO的超薄层可以促进初始的Li成核,这指示了随后循环的形态和可逆性。这种核壳结构可将几何形状和表面化学作用分离并单独控制,以协同方式优化电极性能。使用该平台,锂金属阳极的库仑效率高达99.5%,这为减少过量锂负载的高效率和长寿命锂金属电池提供了一条途径。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号