Shuang‐Jie TanJunpei YueXin‐Cheng HuZhenzhen ShenWenpeng WangJinyi LiTong‐Tong ZuoHui DuanYao XiaoYa‐Xia YinRui WenYu‐Guo Guo
Abstract Safety concerns are impeding the applications of lithium metal batteries. Flame‐retardant electrolytes, such as organic phosphates electrolytes (OPEs), could intrinsically eliminate fire hazards and improve battery safety. However, OPEs show poor compatibility with Li metal though the exact reason has yet to be identified. Here, the lithium plating process in OPEs and Li/OPEs interface chemistry were investigated through ex situ and in situ techniques, and the cause for this incompatibility was revealed to be the highly resistive and inhomogeneous interfaces. Further, a nitriding interface strategy was proposed to ameliorate this issue and a Li metal anode with an improved Li cycling stability (300 h) and dendrite‐free morphology is achieved. Meanwhile, the full batteries coupled with nickel‐rich cathodes, such as LiNi 0.8 Co 0.1 Mn 0.1 O 2 , show excellent cycling stability and outstanding safety (passed the nail penetration test). This successful nitriding‐interface strategy paves a new way to handle the incompatibility between electrode and electrolyte.
Shuang‐Jie TanJunpei YueXin‐Cheng HuZhenzhen ShenWenpeng WangJinyi LiTong‐Tong ZuoHui DuanYao XiaoYa‐Xia YinRui WenYu‐Guo Guo
Ting ChenChun‐I LeeBing−Joe HwangChun‐Jern Pan
Jiandong LiuXin LiJunda HuangGaojing YangJianmin Ma
Li, Ai-MinBorodin, OlegPollard, Travis P.Zhang, WeiranZhang, NanTan, ShaChen, FuJayawardana, ChamithriLucht, Brett L.Hu, EnyuanYang, Xiao-QingWang, Chunsheng
Jixiao LiChunyue LiYutong YaoZhenwei LiJiaozhi YaoLingpeng LuoWeili LiaoXing YeWenming DaiFei LiXiaokun ZhangYong Xiang