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Surface and Interface Engineering of Nanoarrays toward Advanced Electrodes and Electrochemical Energy Storage Devices

机译:纳米阵列朝向先进电极和电化学能量存储装置的表面和接口工程

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摘要

The overall performance of electrochemical energy storage devices (EESDs) is intrinsically correlated with surfaces and interfaces. As a promising electrode architecture, 3D nanoarrays (3D-NAs) possess relatively ordered, continuous, and fully exposed active surfaces of individual nanostructures, facilitating mass and electron transport within the electrode and charge transfer across interfaces and providing an ideal platform for engineering. Herein, a critical overview of the surface and interface engineering of 3D-NAs, from electrode and interface designs to device integration, is presented. The general merits of 3D-NAs and surface/interface engineering principles of 3D-NA hybrid electrodes are highlighted. The focus is on the use of 3D-NAs as a superior platform to regulate the interface nature and unveiling new mechanism/materials without the interference of binders. The engineering and utilization of the surface of 3D-NAs to develop flexible/solid-state EESDs with 3D integrated electrode/electrolyte interfaces, or 3D triphase interfaces involving other active species, which are characteristic of (quasi-)solid-state electrolyte infiltration into the entire device, are also considered. Finally, the challenges and future directions of surface/interface engineering of 3D-NAs are outlined. In particular, potential strategies to obtain electrode charge balance, optimize the multiphase solid-state interface, and attain 3D solid electrolyte infiltration are proposed.
机译:电化学能量存储装置(EESDs)的整体性能与表面和接口有本质相关。作为有前途的电极架构,3D纳米阵列(3D-NAS)具有相对有序,连续和完全暴露的单个纳米结构的有源表面,促进电极内的质量和电子传输,并在界面上的电荷转移并为工程提供理想的平台。这里,提出了3D-NAS的表面和接口工程,从电极和接口设计到设备集成的关键概述。突出了3D-NA混合电极3D-NAS和表面/接口工程原理的一般优点。重点是使用3D-NAS作为优越的平台来调节界面性质和揭示新机制/材料而不会干扰粘合剂的干扰。 3D-NAS表面的工程和利用,用3D集成电极/电解质接口开发柔性/固态EESD,或涉及其他活性物种的3D三相界面,其特征(准)固态电解质渗透到整个设备也被考虑。最后,概述了3D-NAS表面/接口工程的挑战和未来方向。特别地,提出了潜在的策略,以获得电极电荷平衡,优化多相固态界面,并获得达到3D固体电解质渗透。

著录项

  • 来源
    《Advanced Materials》 |2021年第13期|2004959.1-2004959.21|共21页
  • 作者单位

    Huazhong Univ Sci & Technol Sch Opt & Elect Informat Wuhan 430074 Peoples R China|Wuhan Univ Technol Sch Chem Chem Engn & Life Sci Wuhan 430070 Peoples R China|Wuhan Univ Technol State Key Lab Adv Technol Mat Synth & Proc Wuhan 430070 Peoples R China;

    Wuhan Univ Technol Sch Chem Chem Engn & Life Sci Wuhan 430070 Peoples R China|Wuhan Univ Technol State Key Lab Adv Technol Mat Synth & Proc Wuhan 430070 Peoples R China;

    Wuhan Univ Technol Sch Chem Chem Engn & Life Sci Wuhan 430070 Peoples R China|Wuhan Univ Technol State Key Lab Adv Technol Mat Synth & Proc Wuhan 430070 Peoples R China;

    Wuhan Univ Technol Sch Chem Chem Engn & Life Sci Wuhan 430070 Peoples R China|Wuhan Univ Technol State Key Lab Adv Technol Mat Synth & Proc Wuhan 430070 Peoples R China;

    Huazhong Univ Sci & Technol Sch Opt & Elect Informat Wuhan 430074 Peoples R China;

    Huazhong Univ Sci & Technol Sch Opt & Elect Informat Wuhan 430074 Peoples R China;

    Wuhan Univ Technol Sch Chem Chem Engn & Life Sci Wuhan 430070 Peoples R China|Wuhan Univ Technol State Key Lab Adv Technol Mat Synth & Proc Wuhan 430070 Peoples R China|Zhengzhou Univ State Ctr Int Cooperat Designer Low Carbon & Envi Zhengzhou 450001 Peoples R China|Zhengzhou Univ Sch Mat Sci & Engn Zhengzhou 450001 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    advanced electrodes; electrode; electrolyte integrated devices; nanoarrays; non#8208; interference platforms; surface and interface engineering;

    机译:先进电极;电极;电解质集成装置;纳米阵列;非干扰平台;表面和界面工程;

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