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通过电解质和界面化学调控实现的可靠有机羰基电极材料

Reliable Organic Carbonyl Electrode Materials Enabled by Electrolyte and Interfacial Chemistry Regulation.

作者信息

Lu Yong, Ni Youxuan, Chen Jun

机构信息

Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry, Nankai University, Tianjin 300071, China.

出版信息

Acc Chem Res. 2024 Feb 6;57(3):375-385. doi: 10.1021/acs.accounts.3c00687. Epub 2024 Jan 19.

Abstract

ConspectusLithium-ion batteries (LIBs) have achieved great success and dominated the market of portable electronics and electric vehicles owing to their high energy density and long-term cyclability. However, if applying LIBs for large-scale energy storage scenarios, such as regulating the output of electricity generated by sustainable energy in the future age of carbon neutrality, the current electrochemistry of LIBs based on Li-ion interaction/deinteraction between a transition-metal oxide cathode and graphite anode will suffer from problems of scarce natural resources (e.g., Li, Co, and Ni) and high energy consumption/CO emission involved in the production of electrodes. Similarly, other commercial batteries such as lead-acid batteries and nickel-metal hydride batteries are also plagued by these issues.In contrast, organic electrode materials, especially carbonyl materials, exhibit advantages of abundant resources, renewability, high capacity, environmental friendliness, and structural designability and have shown great promise for various rechargeable batteries in recent years. However, organic carbonyl electrode materials generally exhibit unsatisfactory cycling stability and rate performance, which are highly dependent on the electrolyte and interfacial chemistry. Appropriate electrolytes and a stable electrode/electrolyte interface would be beneficial for preventing the dissolution of organic carbonyl electrode materials and/or their redox intermediates in electrolytes and promoting fast ion transport between the electrode and electrolyte. In this regard, designing an appropriate electrolyte and constructing a stable electrode/electrolyte interface are the keys to enhancing the comprehensive performance of organic carbonyl electrode materials.In this Account, on the basis of our progress and related works from other groups in the past decade, we afford an overview of understanding the effects of electrolyte and interfacial chemistry on the electrochemical performance of organic carbonyl electrode materials. We will start by briefly introducing the basic properties, working mechanisms, and issues of organic carbonyl electrode materials. Then, the implications of electrolyte and electrode/electrolyte interfacial chemistry on electrochemical performance will be summarized and highlighted through discussing the performance of organic carbonyl electrodes in different types of electrolytes (organic liquid and aqueous and solid-state electrolytes). Meanwhile, the design principles of electrolytes and interfacial chemistry for organic carbonyl electrodes are also discussed. A representative example is that organic carbonyl electrode materials often exhibit better electrochemical performance in ether-based electrolytes than in ester-based electrolytes, which could be mainly attributed to the stable and robust solid electrolyte interphase (SEI) formed on carbonyl electrodes in the ether-based electrolyte. This example demonstrates the importance of investigating the electrode/electrolyte interfacial chemistry of organic carbonyl electrode materials. Finally, future perspectives on designing appropriate electrolytes and understanding electrode/electrolyte interfacial chemistry will also be discussed. It is meaningful to thoroughly reveal the dynamic evolution of the electrode/electrolyte interface during discharge/charge processes and evaluate the compatibility between electrolytes and organic carbonyl electrode materials under practical conditions using limited quantities of electrolytes and high areal-specific-capacity electrodes in the future. This Account could attract more attention to electrolytes and the electrode/electrolyte interfacial chemistry of organic carbonyl electrode materials and finally promote their future commercial applications.

摘要

概述

锂离子电池(LIBs)因其高能量密度和长期循环稳定性而取得了巨大成功,并主导了便携式电子产品和电动汽车市场。然而,如果将锂离子电池应用于大规模储能场景,例如在未来碳中和时代调节可持续能源产生的电力输出,基于过渡金属氧化物阴极和石墨阳极之间锂离子相互作用/去相互作用的当前锂离子电池电化学将面临自然资源稀缺(如锂、钴和镍)以及电极生产过程中高能耗/碳排放的问题。同样,其他商用电池,如铅酸电池和镍氢电池也受到这些问题的困扰。

相比之下,有机电极材料,尤其是羰基材料,具有资源丰富、可再生、高容量、环境友好和结构可设计性等优点,近年来在各种可充电电池中显示出巨大潜力。然而,有机羰基电极材料通常表现出不尽人意的循环稳定性和倍率性能,这高度依赖于电解质和界面化学。合适的电解质和稳定的电极/电解质界面有利于防止有机羰基电极材料和/或其氧化还原中间体在电解质中溶解,并促进电极与电解质之间的快速离子传输。在这方面,设计合适的电解质并构建稳定的电极/电解质界面是提高有机羰基电极材料综合性能的关键。

在本综述中,基于我们过去十年的进展以及其他团队的相关工作,我们对理解电解质和界面化学对有机羰基电极材料电化学性能的影响进行了概述。我们将首先简要介绍有机羰基电极材料的基本性质、工作机制和问题。然后,通过讨论有机羰基电极在不同类型电解质(有机液体、水性和固态电解质)中的性能来总结和强调电解质和电极/电解质界面化学对电化学性能的影响。同时,还讨论了有机羰基电极的电解质和界面化学的设计原则。一个典型的例子是,有机羰基电极材料在醚基电解质中通常比在酯基电解质中表现出更好的电化学性能,这主要归因于在醚基电解质中羰基电极上形成的稳定且坚固的固体电解质界面(SEI)。这个例子证明了研究有机羰基电极材料的电极/电解质界面化学的重要性。最后,还将讨论设计合适电解质和理解电极/电解质界面化学的未来展望。未来彻底揭示充放电过程中电极/电解质界面的动态演变,并使用少量电解质和高面积比容量电极在实际条件下评估电解质与有机羰基电极材料之间的兼容性是很有意义的。本综述能够吸引更多人关注有机羰基电极材料的电解质和电极/电解质界面化学,并最终推动它们未来的商业应用。

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