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Towards sustainable and versatile energy storage devices: an overview of organic electrode materials

机译:迈向可持续和多功能储能设备:有机电极材料概述

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摘要

As an alternative to conventional inorganic intercalation electrode materials, organic electrode materials are promising candidates for the next generation of sustainable and versatile energy storage devices. In this paper we provide an overview of organic electrode materials, including their fundamental knowledge, development history and perspective applications. Based on different organics including n-type, p-type and bipolar, we firstly analyzed their working principles, reaction mechanisms, electrochemical performances, advantages and challenges. To understand the development history and trends in organic electrode materials, we elaborate in detail various organics with different structures, including conducting polymers, organodisulfides, thioethers, nitroxyl radical polymers and conjugated carbonyl compounds. The high electrochemical performance, in addition with the unique features of organics such as flexibility, processability and structure diversity, provide them great perspective in various energy storage devices, including rechargeable Li/Na batteries, supercapacitors, thin film batteries, aqueous rechargeable batteries, redox flow batteries and even all-organic batteries. It is expected that organic electrode materials will show their talents in the "post Li-ion battery" era, towards cheap, green, sustainable and versatile energy storage devices.
机译:作为常规无机插层电极材料的替代品,有机电极材料是下一代可持续和多功能储能设备的有希望的候选者。在本文中,我们概述了有机电极材料,包括其基本知识,发展历史和应用前景。我们首先基于n型,p型和双极性的不同有机物,分析了它们的工作原理,反应机理,电化学性能,优势和挑战。为了了解有机电极材料的发展历史和趋势,我们详细阐述了各种具有不同结构的有机物,包括导电聚合物,有机二硫化物,硫醚,硝酰基自由基聚合物和共轭羰基化合物。高度的电化学性能,以及柔韧性,可加工性和结构多样性等有机物的独特功能,使它们在各种能量存储设备中具有广阔的前景,包括可充电锂/钠电池,超级电容器,薄膜电池,水性可充电电池,氧化还原液流电池,甚至是全有机电池。可以预期,有机电极材料将在“后锂离子电池”时代展示出他们的才能,朝着廉价,绿色,可持续和多功能的储能设备发展。

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  • 来源
    《Energy & environmental science》 |2013年第8期|2280-2301|共22页
  • 作者

    Zhiping Song; Haoshen Zhou;

  • 作者单位

    Energy Technology Research Institute (ETRI), National Institute of Advanced Industrial Science and Technology (AIST), 1-1-1 Umezono, Tsukuba, Ibaraki 305-8568, Japan;

    Energy Technology Research Institute (ETRI), National Institute of Advanced Industrial Science and Technology (AIST), 1-1-1 Umezono, Tsukuba, Ibaraki 305-8568, Japan,National Laboratory of Solid State Microstructures & Department of Energy Science and Engineering, Nanjing University, Nanjing 210093, China;

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