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评估钠全固态电池中电解质-阳极界面稳定性

Evaluating Electrolyte-Anode Interface Stability in Sodium All-Solid-State Batteries.

作者信息

Deysher Grayson, Chen Yu-Ting, Sayahpour Baharak, Lin Sharon Wan-Hsuan, Ham So-Yeon, Ridley Phillip, Cronk Ashley, Wu Erik A, Tan Darren H S, Doux Jean-Marie, Oh Jin An Sam, Jang Jihyun, Nguyen Long Hoang Bao, Meng Ying Shirley

机构信息

Program of Materials Science and Engineering, University of California San Diego, La Jolla, California92093, United States.

Department of NanoEngineering, University of California San Diego, La Jolla, California92093, United States.

出版信息

ACS Appl Mater Interfaces. 2022 Oct 26;14(42):47706-47715. doi: 10.1021/acsami.2c12759. Epub 2022 Oct 14.

Abstract

All-solid-state batteries have recently gained considerable attention due to their potential improvements in safety, energy density, and cycle-life compared to conventional liquid electrolyte batteries. Sodium all-solid-state batteries also offer the potential to eliminate costly materials containing lithium, nickel, and cobalt, making them ideal for emerging grid energy storage applications. However, significant work is required to understand the persisting limitations and long-term cyclability of Na all-solid-state-based batteries. In this work, we demonstrate the importance of careful solid electrolyte selection for use against an alloy anode in Na all-solid-state batteries. Three emerging solid electrolyte material classes were chosen for this study: the chloride NaYZrCl, sulfide NaPS, and borohydride Na(BH)(BH). Focused ion beam scanning electron microscopy (FIB-SEM) imaging, X-ray photoelectron spectroscopy (XPS), and electrochemical impedance spectroscopy (EIS) were utilized to characterize the evolution of the anode-electrolyte interface upon electrochemical cycling. The obtained results revealed that the interface stability is determined by both the intrinsic electrochemical stability of the solid electrolyte and the passivating properties of the formed interfacial products. With appropriate material selection for stability at the respective anode and cathode interfaces, stable cycling performance can be achieved for Na all-solid-state batteries.

摘要

与传统液体电解质电池相比,全固态电池因其在安全性、能量密度和循环寿命方面的潜在改进,最近受到了广泛关注。钠全固态电池还具有消除含锂、镍和钴的昂贵材料的潜力,使其成为新兴电网储能应用的理想选择。然而,要了解基于钠全固态的电池持续存在的局限性和长期循环稳定性,还需要开展大量工作。在这项工作中,我们证明了在钠全固态电池中,针对合金阳极仔细选择固体电解质的重要性。本研究选择了三种新兴的固体电解质材料类别:氯化物NaYZrCl、硫化物NaPS和硼氢化物Na(BH)(BH)。利用聚焦离子束扫描电子显微镜(FIB-SEM)成像、X射线光电子能谱(XPS)和电化学阻抗谱(EIS)来表征电化学循环过程中阳极-电解质界面的演变。所得结果表明,界面稳定性由固体电解质的固有电化学稳定性和形成的界面产物的钝化性能共同决定。通过在相应的阳极和阴极界面选择合适的稳定材料,钠全固态电池可以实现稳定的循环性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ade4/9614718/08ae00c22bda/am2c12759_0002.jpg

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