| Literature DB >> 30247780 |
Pan Xue1, Shuiren Liu1, Xinlei Shi1, Chuang Sun2, Chao Lai2, Ying Zhou3, Dong Sui3, Yongsheng Chen3, Jiajie Liang1,3,4.
Abstract
Metallic lithium (Li) is a promising anode for next-generation high-energy-density batteries, but its applications are still hampered due to the limited charging/discharging rate and poor cycling performance. Here, a hierarchical 3D porous architecture is designed with a binary network of continuous silver nanowires assembled on an interconnected 3D graphene skeleton as the host for Li-metal composite anodes, which offers a significant boost in both charging/discharging rates and long-term cycling performance for Li-metal batteries. This unique hierarchical binary network structure in conjunction with optimized material combination provides ultrafast, continuous, and smooth electron transportation channel and non-nucleation barrier sites to direct and confine Li deposition. It also offers outstanding mechanical strength and toughness to support massive Li deposition and buffer the internal stress fluctuations during long-term repeated Li stripping/plating thereby minimizing fundamental issues of dendrite formation and volume change even under ultrafast charging/discharging rates. As a result, the composite anode using this hierarchical host can work smoothly at an unprecedented high current density of 40 mA cm-2 over 1000 plating/stripping cycles with low overpotential (<120 mV) in symmetric cells. The as-constructed full cell, paired with LiNi0.5 Co0.2 Mn0.3 O2 cathode, also exhibits excellent rate capability and high-rate cycling stability.Entities:
Keywords: graphene; hierarchical 3D networks; lithium batteries; lithium-metal anodes; silver nanowires
Year: 2018 PMID: 30247780 DOI: 10.1002/adma.201804165
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849