Wang Tian, Xi Qiao, Yao Kai, Liu Yuhang, Fu Hao, Kavarthapu Venkata Siva, Lee Jun Kyu, Tang Shaocong, Fattakhova-Rohlfing Dina, Ai Wei, Yu Jae Su
Department of Electronics and Information Convergence Engineering, Institute for Wearable Convergence Electronics, Kyung Hee University, Yongin-si, Gyeonggi-do, 17104, Republic of Korea.
Frontiers Science Center for Flexible Electronics (FSCFE) and Shaanxi Institute of Flexible Electronics (SIFE), Northwestern Polytechnical University (NPU), 127 West Youyi Road, Xi'an, 710072, People's Republic of China.
Nanomicro Lett. 2024 Feb 9;16(1):112. doi: 10.1007/s40820-024-01327-2.
The undesirable dendrite growth induced by non-planar zinc (Zn) deposition and low Coulombic efficiency resulting from severe side reactions have been long-standing challenges for metallic Zn anodes and substantially impede the practical application of rechargeable aqueous Zn metal batteries (ZMBs). Herein, we present a strategy for achieving a high-rate and long-cycle-life Zn metal anode by patterning Zn foil surfaces and endowing a Zn-Indium (Zn-In) interface in the microchannels. The accumulation of electrons in the microchannel and the zincophilicity of the Zn-In interface promote preferential heteroepitaxial Zn deposition in the microchannel region and enhance the tolerance of the electrode at high current densities. Meanwhile, electron aggregation accelerates the dissolution of non-(002) plane Zn atoms on the array surface, thereby directing the subsequent homoepitaxial Zn deposition on the array surface. Consequently, the planar dendrite-free Zn deposition and long-term cycling stability are achieved (5,050 h at 10.0 mA cm and 27,000 cycles at 20.0 mA cm). Furthermore, a Zn/I full cell assembled by pairing with such an anode can maintain good stability for 3,500 cycles at 5.0 C, demonstrating the application potential of the as-prepared ZnIn anode for high-performance aqueous ZMBs.
由非平面锌(Zn)沉积引起的不良枝晶生长以及严重副反应导致的低库仑效率,长期以来一直是金属锌阳极面临的挑战,并严重阻碍了可充电水系锌金属电池(ZMB)的实际应用。在此,我们提出了一种通过对锌箔表面进行图案化处理并在微通道中赋予锌-铟(Zn-In)界面来实现高倍率和长循环寿命锌金属阳极的策略。微通道中电子的积累以及Zn-In界面的亲锌性促进了微通道区域中优先的异质外延锌沉积,并提高了电极在高电流密度下的耐受性。同时,电子聚集加速了阵列表面非(002)平面锌原子的溶解,从而引导随后的阵列表面同质外延锌沉积。因此,实现了无平面枝晶的锌沉积和长期循环稳定性(在10.0 mA cm下为5050 h,在20.0 mA cm下为27000次循环)。此外,与这种阳极配对组装的Zn/I全电池在5.0 C下可保持3500次循环的良好稳定性,证明了所制备的ZnIn阳极在高性能水系ZMB中的应用潜力。