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储能电池有机电极材料改性策略研究进展

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有机电极材料因其成本低、资源丰富、环境友好、可设计性等优势,成为具有发展潜力的二次电池候选电极材料.目前,种类丰富的有机电极材料已应用在各种金属离子电池体系,然而有机电极材料的商业化应用仍面临着诸多挑战,如本征电导率低、在有机电解液中溶解度大、放电电位低等.针对有机电极材料的技术瓶颈,大量研究聚焦在有机电极材料结构、工艺、尺度等改性优化方面.本文回顾有机电极材料的发展历程和应用,并总结其分类、反应机理及主要问题和挑战,进而详细综述有机电极材料已报道的改性策略,包括分子结构修饰、复合导电碳、纳米尺寸优化、电极-电解液耦合与制备工艺优化等方法,分析各改性方法优势和局限性,最后对未来有机电极材料改性研究方向进行展望,为今后有机电极材料的设计与研究提供参考.
Research Progress on Modification Strategies of Organic Electrode Materials for Energy Storage Batteries
With the development of modern society,the demand for energy is increasing.Consequently,the efficient utilization of renewable energy has become the primary concern in the energy sector.Secondary batteries can accomplish energy storage through efficient electrical/chemical energy conversion,thereby providing an effective solution for the utilization of renewable energy.Lithium-ion batteries have been the most widely used secondary battery systems,owing to their high energy densities and long lifetimes.Nevertheless,traditional inorganic cathode materials have recently encountered problems such as increasing manufacturing costs,lithium supply-chain constraints,and safety issues.Meanwhile,organic electrode materials(OEMs)have emerged as promising electrode candidates for secondary batteries owing to several advantages,such as their low costs,abundant resources,environmental friendliness,and structural designability.In recent decades,considerable efforts have been dedicated to OEM research.To date,commonly used OEMs include carbonyl polymers,conductive polymers,nitrile compounds,organic sulfides,organic free radical compounds,imine compounds,and Azo compounds.OEMs have been used in various metal ion battery systems,including lithium-,sodium-,aluminum-,zinc-,magnesium-,potassium-,and calcium-based batteries.However,the commercialization of OEMs still encounters several challenges,mainly owing to their low conductivity,high solubility,and low discharge potential.The low intrinsic conductivity of OEMs leads to difficulties in ion diffusion,while their high solubility in organic electrolytes inevitably reduces cyclic stability.Moreover,the low discharge potential of OEMs decreases energy density and rate performance.In view of the technical restrictions affecting OEMs,researchers have focused on modifications and optimizations of the structure,preparation strategies,and sizes of OEMs.In this paper,we review the development history and applications of OEMs and systemically summarize their classification,reaction mechanisms,and primary challenges.In addition,we thoroughly report on OEM modification strategies.By shaping their molecular structures,such as either by substituent introduction,conjugated structure formation,or small molecule polymerization,the solubility of OEMs can be reduced,and their discharge potential can be enhanced.The conductivity of OEMs can be improved significantly by combining them with conductive carbon materials.Nano-sized optimization and electrode-electrolyte coupling can also significantly improve their cycle stability and rate performance.Additionally,the electrochemical performance of OEMs can be improved by optimizing preparation processes and determining the best technological parameters.Finally,we envision future research paths of OEM modification,which could provide a future reference in OEM design and research.

Organic electrode materialsModification strategyMolecular structure designSolubilityConductivity

辛燕、葛运年、李泽中、张桥保、田华军

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华北电力大学,电站能量传递转化与系统教育部重点实验室,北京 102206

华北电力大学能源动力与机械工程学院,北京 102206

厦门大学材料学院,固体表面物理化学国家重点实验室,福建 厦门 361005

有机电极材料 改性策略 分子结构设计 溶解度 导电率

国家自然科学基金国家自然科学基金华北电力大学"双一流"学科交叉创新专项中央高校基本科研业务费

5212221152072323XM22123152018MS019

2024

物理化学学报
中国化学会

物理化学学报

CSTPCD北大核心
影响因子:0.951
ISSN:1000-6818
年,卷(期):2024.40(2)
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