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使用导电液体电解质系统实现具有高面积容量的可逆钠电镀/剥离

Reversible Na Plating/Stripping with High Areal Capacity Using an Electroconductive Liquid Electrolyte System.

作者信息

Jung Youngjae, Lee Seyoung, Kim Dowan, Park Jaehyun, Kang Seok Ju, Kim Youngsik, Park Jeong-Sun, Lee Wang-Geun

机构信息

School of Energy & Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), UNIST-gil 50, Ulsan 44919, Republic of Korea.

R&D Center, 4TOONE Corporation, UNIST-gil 50, Ulsan 44919, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2023 Sep 20;15(37):43656-43666. doi: 10.1021/acsami.3c06554. Epub 2023 Sep 6.

Abstract

Anode-free sodium-metal batteries (AFSMBs) are promising candidates for maximizing energy density and minimizing cost and safety hazards in the absence of metallic sodium during cell assembly. The practical implementation of AFSMBs is hindered by the low cycling stability of Na-metal plating and stripping, particularly under high areal capacities, due to unstable solid electrolyte interphase (SEI) layer formation with electrolyte decomposition and inactive dead Na formation. Here, we proposed an electroconductive electrolyte system consisting of liquid electrolytes that accept electrons at a certain energy level and form electronically conductive and solid electrolytes that prevent internal short circuit through low electronic conductivity. The electron acceptability and high electronic conductivity of the liquid electrolyte can suppress the irreversible electron transfer with electrolyte decomposition and reutilize the inactive dead metal, respectively. The functions of the system were demonstrated using a sodium biphenyl liquid electrolyte-NASICON solid electrolyte in a seawater battery (SWB) system, which features an infinite sodium source. The anode-free SWB cells achieved a high Coulombic efficiency of ≥99.9% for over 60 cycles at a high areal capacity of ∼24 mAh/cm. This study provides insight into the Na plating/stripping properties in anode-free systems and proposes a significant strategy for improving the reversibility of metal anodes for various battery systems with solid electrolytes.

摘要

无阳极钠金属电池(AFSMB)有望在电池组装过程中在不存在金属钠的情况下最大化能量密度、最小化成本和安全风险。由于与电解质分解和无活性死钠形成相关的不稳定固体电解质界面(SEI)层的形成,Na金属电镀和剥离的低循环稳定性阻碍了AFSMB的实际应用,特别是在高面积容量下。在此,我们提出了一种由液体电解质组成的导电电解质系统,该液体电解质在特定能级接受电子并形成防止内部短路的电子导电固体电解质,其电子电导率低。液体电解质的电子接受性和高电子电导率可分别抑制与电解质分解相关的不可逆电子转移并重新利用无活性死金属。使用具有无限钠源的海水电池(SWB)系统中的联苯钠液体电解质-NASICON固体电解质证明了该系统的功能。无阳极SWB电池在约24 mAh/cm的高面积容量下超过60个循环实现了≥99.9%的高库仑效率。本研究深入了解了无阳极系统中的Na电镀/剥离特性,并提出了一种显著策略,以提高各种具有固体电解质的电池系统中金属阳极的可逆性。

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