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电动汽车驱动
★ 5.0
可充电离子电池中的固/电解质界面和正极/电解质界面:挑战与展望
Solid/electrolyte and cathode/electrolyte interphases in rechargeable ion batteries: Challenges and perspectives
| 作者 | Homayun Khezraq · Marzieh Golshan · Mehdi Salami Kalajahi |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 384 卷 |
| 技术分类 | 电动汽车驱动 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Solid-electrolyte interphase (SEI) controls the cycle life capacity and overall safety of batteries. |
语言:
中文摘要
摘要 随着全球迎来电气化革命以及电动汽车、智能电网和智能电子设备等各类便携式装置的普及,对具有优异能量密度、长循环寿命和最高运行安全性的可充电电池的需求急剧上升。电极-电解质接触是实现可充电离子电池(RIBs)可逆运行的关键因素之一。普遍认为,固体电解质界面(SEI)控制着电池的循环寿命、容量及整体安全性,但其形成过程会消耗活性离子,从而导致电池容量降低。然而,正极-电解质相互作用的研究仍相对不足。与SEI不同,目前对正极电解质界面(CEI)的形成机制及其对电池性能的影响知之甚少。典型的CEI被认为是在正极表面由电解质分解形成的异质多组分薄膜。开发适用于高电压正极材料的CEI至关重要,它能够将电解质与活性正极材料隔离,防止副反应的发生。除了理解其热力学特性及相关合成过程外,由于CEI结构复杂,构建并维持稳定的CEI层仍是当前面临的主要挑战之一。本文讨论了为构筑稳定CEI而开展的广泛研究工作,包括电解质添加剂的使用和正极异原子掺杂等策略。因此,为了提升电池性能,必须深入理解SEI的作用机制以及CEI的形成机理。本综述旨在系统阐述近年来在SEI和CEI形成基础科学概念方面的最新进展。最后,我们探讨了RIBs中SEI/CEI领域的最新发展动态及未来的研究方向。
English Abstract
Abstract As the world embraces the revolution of electrification and the portability of various devices like electric vehicles, smart electric power grids, and intelligent electronic devices, the need for rechargeable batteries with exceptional energy density, extended cycle life, and utmost operational safety has skyrocketed. The electrode-electrolyte contact is an important aspect that enables rechargeable ion batteries (RIBs) to function reversibly. While believe that the solid-electrolyte interphase (SEI) controls the cycle life, capacity, and overall safety of batteries, it is known to lower the battery capacity due to the consumption of active ions. However, the cathode-electrolyte interaction is still largely unexplored. Unlike SEI, little is known about how cathode-electrolyte interphase (CEI) is formed and how it affects battery performance. A typical CEI is considered to be a heterogeneous multicomponent film formed on the cathode surface as a result of electrolyte decomposition. Developing a CEI for high-voltage cathode electrodes is crucial to separating the electrolytes from the active cathode materials and preventing side reactions. In addition to comprehending the thermodynamic characteristics and associated synthetic processes, one of the primary obstacles is establishing and maintaining the CEI layer because of its intricate structure. The utilization of electrolyte additives and cathode heteroatomic doping, among other extensive research efforts aimed at engineering a stable CEI, are discussed. Thus, to improve battery performance, a thorough understanding of SEI performance and CEI formation mechanism is necessary. This review aims to provide a comprehensive insight of recent advancements in the scientific concepts underlying the formation of SEI and CEI. Finally, we delve into the latest developments and future research directions related to SEI/CEI in RIBs.
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SunView 深度解读
该SEI/CEI界面技术研究对阳光电源储能系统和充电桩产品具有重要价值。在PowerTitan储能系统中,理解电池界面层形成机制可优化BMS电池管理策略,延长循环寿命;在电动汽车充电站解决方案中,掌握高压正极CEI稳定性技术有助于开发更安全的快充协议;ST系列PCS可结合电解质添加剂和阴极掺杂等CEI工程化技术,提升储能电池安全性与能量密度,支撑iSolarCloud平台实现电池健康状态的精准预测性维护。