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用于长寿命无钠金属电池的多功能高熵合金纳米层

Multifunctional High-Entropy Alloy Nanolayer Toward Long-Life Anode-Free Sodium Metal Battery.

作者信息

Liu Lin, Cai Zijian, Yang Shoumeng, Yang Yang, Yao Yu, He Shengnan, Xu Shitan, Wu Zhijun, Pan Hongge, Rui Xianhong, Yu Yan

机构信息

Guangdong Provincial Key Laboratory on Functional Soft Condensed Matter, School of Materials and Energy, Guangdong University of Technology, Guangzhou, 510006, P. R. China.

Hefei National Research Center for Physical Sciences at the Microscale, Department of Materials Science and Engineering, CAS Key Laboratory of Materials for Energy Conversion, University of Science and Technology of China, Hefei, Anhui, 230026, China.

出版信息

Adv Mater. 2025 Jan;37(3):e2413331. doi: 10.1002/adma.202413331. Epub 2024 Nov 28.

Abstract

Anode-free sodium metal batteries (AFSMBs) hold great promise due to high energy density and low cost. Unfortunately, their practical applications are hindered by poor cycling stability, which is attributed to Na dendrite growth and inferior Na plating/stripping reversibility on conventional sodiophobic current collectors. Here, a thin high-entropy alloy (HEA, NbMoTaWV) interfacial layer composed of densely packed nanoplates is constructed on commercial aluminum foil (NbMoTaWV@Al) for AFSMBs. The enhanced sodiophilicity of the HEA greatly reduces Na nucleation barrier with low nucleation overpotential. Simultaneously, abundant active sites of the HEA can boost interfacial reaction kinetics and guide uniform Na deposition. Furthermore, plentiful HEA nanoplates can homogenize electric field distribution and decrease the local current density. Benefiting from the advantageous properties of NbMoTaWV@Al, outstanding electrochemical performances, including an average Coulombic efficiency of 99.5% over 1000 cycles at 2 mA cm/2 mAh cm in asymmetric cells, alongside a small overpotential (10 mV at 1 mA cm) and a long lifespan of 2500 cycles in symmetric cells, are achieved. More impressively, the anode-free NbMoTaWV@Al||NaV(PO) batteries display superior cycling stability over 300 cycles. This work presents an efficient method of employing multifunctional HEA materials to manipulate the interfacial properties of current collector for high-performance AFSMBs.

摘要

无阳极钠金属电池(AFSMBs)因其高能量密度和低成本而具有巨大的应用前景。不幸的是,它们的实际应用受到循环稳定性差的阻碍,这归因于钠枝晶的生长以及在传统疏钠集流体上钠电镀/剥离的可逆性较差。在此,在商用铝箔(NbMoTaWV@Al)上构建了由密集堆积的纳米片组成的薄高熵合金(HEA,NbMoTaWV)界面层,用于AFSMBs。HEA增强的亲钠性极大地降低了钠成核势垒,且成核过电位较低。同时,HEA丰富的活性位点可以促进界面反应动力学并引导钠均匀沉积。此外,大量的HEA纳米片可以使电场分布均匀并降低局部电流密度。受益于NbMoTaWV@Al的有利特性,实现了出色的电化学性能,包括在非对称电池中以2 mA cm/2 mAh cm的电流密度在1000次循环中平均库仑效率达到99.5%,以及在对称电池中具有小过电位(1 mA cm时为10 mV)和2500次循环的长寿命。更令人印象深刻的是,无阳极NbMoTaWV@Al||NaV(PO)电池在300次循环中表现出优异的循环稳定性。这项工作提出了一种利用多功能HEA材料来调控集流体界面性质以实现高性能AFSMBs的有效方法。

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