Lin Shengxuan, Wang Yifan, Chen Yuhang, Cai Zihe, Xiao Jiajia, Muhmood Tahir, Hu Xiaobin
State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
ACS Appl Mater Interfaces. 2021 Sep 8;13(35):41744-41752. doi: 10.1021/acsami.1c12576. Epub 2021 Aug 26.
Constructing a stable non-dendritic lithium metal anode is the key to the development of high-energy batteries in the future. Herein, we fabricated nitrogen-doped carbon photonic crystals in situ in the macropores of carbon papers as a porous skeleton and confined hosts for metallic lithium. The large specific surface area of the carbon photonic crystal reduces the current density of the electrode. The three-dimensional ordered microstructure promotes uniform charge distribution and uniform lithium deposition and inhibits the volume expansion of metallic lithium. The as-prepared lithium metal anode exhibits prominent electrochemical performance with a small hysteresis of less than 95 mV beyond 180 cycles at an extremely high current density of 15 mA cm. When the as-prepared lithium metal anode is coupled with the sulfur cathode, the obtained full cell displays enhanced capacitive properties and cycle life. Compared with the bare Li anode, the full cell exhibits more than 300 cycles of cell life and a 70 mA h g higher discharge capacity.
构建稳定的非枝晶锂金属负极是未来高能电池发展的关键。在此,我们在碳纸的大孔中原位制备了氮掺杂碳光子晶体,作为金属锂的多孔骨架和受限主体。碳光子晶体的大比表面积降低了电极的电流密度。三维有序微观结构促进了电荷均匀分布和锂的均匀沉积,并抑制了金属锂的体积膨胀。所制备的锂金属负极表现出优异的电化学性能,在15 mA cm的极高电流密度下,超过180次循环后的滞后小于95 mV。当所制备的锂金属负极与硫正极耦合时,所得全电池显示出增强的电容性能和循环寿命。与裸锂负极相比,全电池表现出超过300次的电池寿命循环和高70 mA h g的放电容量。