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具有增强亲钠性的三维分级主体结构助力无阳极钠金属电池

A 3D Hierarchical Host with Enhanced Sodiophilicity Enabling Anode-Free Sodium-Metal Batteries.

作者信息

Lee Kyungbin, Lee Young Jun, Lee Michael J, Han Junghun, Lim Jeonghoon, Ryu Kun, Yoon Hana, Kim Byung-Hyun, Kim Bumjoon J, Lee Seung Woo

机构信息

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

出版信息

Adv Mater. 2022 Apr;34(14):e2109767. doi: 10.1002/adma.202109767. Epub 2022 Mar 1.

Abstract

Sodium-metal batteries (SMBs) are considered as a compliment to lithium-metal batteries for next-generation high-energy batteries because of their low cost and the abundance of sodium (Na). Herein, a 3D nanostructured porous carbon particle containing carbon-shell-coated Fe nanoparticles (PC-CFe) is employed as a highly reversible Na-metal host. PC-CFe has a unique 3D hierarchy based on sub-micrometer-sized carbon particles, ordered open channels, and evenly distributed carbon-coated Fe nanoparticles (CFe) on the surface. PC-CFe achieves high reversibility of Na plating/stripping processes over 500 cycles with a Coulombic efficiency of 99.6% at 10 mA cm with 10 mAh cm in Na//Cu asymmetric cells, as well as over 14 400 cycles at 60 mA cm in Na//Na symmetric cells. Density functional theory calculations reveal that the superior cycling performance of PC-CFe stems from the stronger adsorption of Na on the surface of the CFe, providing initial nucleation sites more favorable to Na deposition. Moreover, the full cell with a PC-CFe host without Na metal and a high-loading Na V (PO ) cathode (10 mg cm ) maintains a high capacity of 103 mAh g at 1 mA cm even after 100 cycles, demonstrating the operation of anode-free SMBs.

摘要

钠金属电池(SMBs)因其低成本和钠(Na)的丰富储量,被视为下一代高能电池中锂金属电池的补充。在此,一种包含碳壳包覆铁纳米颗粒的三维纳米结构多孔碳颗粒(PC-CFe)被用作高度可逆的钠金属宿主。PC-CFe基于亚微米级碳颗粒、有序开放通道以及表面均匀分布的碳包覆铁纳米颗粒(CFe)具有独特的三维层次结构。在Na//Cu不对称电池中,PC-CFe在10 mA cm下,10 mAh cm时,实现了超过500次循环的钠电镀/剥离过程的高可逆性,库仑效率为99.6%;在Na//Na对称电池中,在60 mA cm下实现了超过14400次循环。密度泛函理论计算表明,PC-CFe优异的循环性能源于Na在CFe表面更强的吸附,为Na沉积提供了更有利的初始成核位点。此外,具有PC-CFe宿主、无钠金属和高负载钠钒(PO)阴极(10 mg cm)的全电池,即使在100次循环后,在1 mA cm下仍保持103 mAh g的高容量,证明了无阳极SMBs的运行。

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