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全固态钠电池无机电解质概述

Overview of Inorganic Electrolytes for All-Solid-State Sodium Batteries.

作者信息

Radjendirane Aakash Carthick, Maurya Dheeraj Kumar, Ren Juanna, Hou Hua, Algadi Hassan, Xu Ben Bin, Guo Zhanhu, Angaiah Subramania

机构信息

Electro-Materials Research Laboratory, Centre for Nanoscience and Technology, Pondicherry University, Puducherry 605 014, India.

College of Materials Science and Engineering, Taiyuan University of Science and Technology, Taiyuan 030024, China.

出版信息

Langmuir. 2024 Aug 13;40(32):16690-16712. doi: 10.1021/acs.langmuir.4c01845. Epub 2024 Jul 30.

Abstract

All-solid-state sodium batteries (ASB) emerged as a strong contender in the global electrochemical energy storage market as a replacement for current lithium-ion batteries (LIB) owing to their high abundance, low cost, high safety, high energy density, and long calendar life. Inorganic electrolytes (IEs) are highly preferred over the conventional liquid and solid polymer electrolytes for sodium-ion batteries (SIBs) due to their high ionic conductivity (∼10-10 S cm), wide potential window (∼5 V), and overall better battery performances. This review discusses the bird's eye view of the recent progress in inorganic electrolytes such as Na-β"-alumina, NASICON, sulfides, antipervoskites, borohydride-type electrolytes, etc. for ASBs. Current state-of-the-art inorganic electrolytes in correlation with their ionic conduction mechanism present challenges and interfacial characteristics that have been critically reviewed in this review. The current challenges associated with the present battery configuration are overlooked, and also the chemical and electrochemical stabilities are emphasized. The substantial solution based on ongoing electrolyte development and promising modification strategies are also suggested.

摘要

全固态钠电池(ASB)作为全球电化学储能市场中替代当前锂离子电池(LIB)的有力竞争者而出现,这得益于其钠资源丰富、成本低、安全性高、能量密度高以及日历寿命长等优点。对于钠离子电池(SIB)而言,无机电解质(IE)相较于传统的液体和固体聚合物电解质更受青睐,因为它们具有高离子电导率(10 - 10 S cm)、宽电位窗口(5 V)以及整体更好的电池性能。本文综述了用于全固态钠电池的无机电解质(如Na-β''-氧化铝、NASICON、硫化物、反钙钛矿、硼氢化物型电解质等)的近期进展概况。与它们的离子传导机制相关的当前最先进的无机电解质呈现出的挑战和界面特性在本文中得到了批判性综述。本文忽略了与当前电池配置相关的当前挑战,同时强调了化学和电化学稳定性。还提出了基于当前电解质开发的实质性解决方案以及有前景的改性策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/23f5/11325648/7fc63361e862/la4c01845_0001.jpg

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