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Recent Advances in Designing and Fabricating Self‐Supported Nanoelectrodes for Supercapacitors

机译:用于超级电容器自支撑纳米电极设计和制造自支撑纳米电极的最新进展

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Abstract >Owing to the outstanding advantages as electrical energy storage system, supercapacitors have attracted tremendous research interests over the past decade. Current research efforts are being devoted to improve the energy storage capabilities of supercapacitors through either discovering novel electroactive materials or nanostructuring existing electroactive materials. From the device point of view, the energy storage performance of supercapacitor not only depends on the electroactive materials themselves, but importantly, relies on the structure of electrode whether it allows the electroactive materials to reach their full potentials for energy storage. With respect to utilizing nanostructured electroactive materials, the key issue is to retain all advantages of the nanoscale features for supercapacitors when being assembled into electrodes and the following devices. Rational design and fabrication of self‐supported nanoelectrodes is therefore considered as the most promising strategy to address this challenge. In this review, we summarize the recent advances in designing and fabricating self‐supported nanoelectrodes for supercapacitors towards high energy storage capability. Self‐supported homogeneous and heterogeneous nanoelectrodes in the forms of one‐dimensional (1D) nanoarrays, two‐dimensional (2D) nanoarrays, and three‐dimensional (3D) nanoporous architectures are introduced with their representative results presented. The challenges and perspectives in this field are also discussed. </abstract> </span> <span class="z_kbtn z_kbtnclass hoverxs" style="display: none;">展开▼</span> </div> <div class="translation abstracttxt"> <span class="zhankaihshouqi fivelineshidden" id="abstract"> <span>机译:</span><Abstract XMLNS =“http://www.wiley.com/namespaces/wiley”type =“main”xml:lang =“en”> <标题类型=“main”>抽象</ title> 由于由于电能存储系统的优势出色,超级电容器在过去十年中引起了巨大的研究兴趣。目前正在致力于通过发现新型电活性材料或纳米结构现有的电活性材料来改善超级电容器的能量储存能力。从设备的角度来看,超级电容器的能量存储性能不仅取决于电活性材料本身,而且重要的是,重要的是,依赖于电极的结构,无论是允许电活性材料达到它们的能量储存的全部电位。关于利用纳米结构电活性材料,当组装到电极和下列装置中时,关键问题是保留超级电容器的纳米级特征的所有优点。因此,自支撑纳米电极的合理设计和制造被认为是解决这一挑战的最有希望的策略。在本次审查中,我们总结了最近的设计和制造自支持的纳米电极的进步,用于超级电容器朝向高能量储存能力。用它们的代表性结果引入了一维(1D)纳米阵列,二维(2D)纳米纳阵列,二维(2D)纳米阵列和三维(3D)纳米多孔架构的形式的自支持的均相和异构纳米电极。还讨论了该领域的挑战和观点。</ p> </摘要> </span> <span class="z_kbtn z_kbtnclass hoverxs" style="display: none;">展开▼</span> </div> </div> <div class="record"> <h2 class="all_title" id="enpatent33" >著录项</h2> <ul> <li> <span class="lefttit">来源</span> <div style="width: 86%;vertical-align: text-top;display: inline-block;"> <a href='/journal-foreign-18063/'>《Advanced materials interfaces》</a> <b style="margin: 0 2px;">|</b><span>2017年第10期</span><b style="margin: 0 2px;">|</b><span>共1页</span> </div> </li> <li> <div class="author"> <span class="lefttit">作者</span> <p id="fAuthorthree" class="threelineshidden zhankaihshouqi"> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Zhao Huaping&option=202" target="_blank" rel="nofollow">Zhao Huaping;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Liu Long&option=202" target="_blank" rel="nofollow">Liu Long;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Vellacheri Ranjith&option=202" target="_blank" rel="nofollow">Vellacheri Ranjith;</a> <a href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=Lei Yong&option=202" target="_blank" rel="nofollow">Lei Yong;</a> </p> <span class="z_kbtnclass z_kbtnclassall hoverxs" id="zkzz" style="display: none;">展开▼</span> </div> </li> <li> <div style="display: flex;"> <span class="lefttit">作者单位</span> <div style="position: relative;margin-left: 3px;max-width: 639px;"> <div class="threelineshidden zhankaihshouqi" id="fOrgthree"> <p>Institute of Physics &</p> <p>IMN Macronano ? Ilmenau University of TechnologyIlmenau 98693 Germany;</p> <p>Institute of Physics &</p> <p>IMN Macronano ? Ilmenau University of TechnologyIlmenau 98693 Germany;</p> <p>Institute of Physics &</p> <p>IMN Macronano ? Ilmenau University of TechnologyIlmenau 98693 Germany;</p> <p>Institute of Physics &</p> <p>IMN Macronano ? Ilmenau University of TechnologyIlmenau 98693 Germany;</p> </div> <span class="z_kbtnclass z_kbtnclassall hoverxs" id="zhdw" style="display: none;">展开▼</span> </div> </div> </li> <li > <span class="lefttit">收录信息</span> <span style="width: 86%;vertical-align: text-top;display: inline-block;"></span> </li> <li> <span class="lefttit">原文格式</span> <span>PDF</span> </li> <li> <span class="lefttit">正文语种</span> <span>eng</span> </li> <li> <span class="lefttit">中图分类</span> <span><a href="https://www.zhangqiaokeyan.com/clc/6960.html" title="特种结构材料">特种结构材料;</a></span> </li> <li class="antistop"> <span class="lefttit">关键词</span> <p style="width: 86%;vertical-align: text-top;"> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=heterogeneous nanoelectrodes&option=203" rel="nofollow">heterogeneous nanoelectrodes;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=homogeneous nanoelectrodes&option=203" rel="nofollow">homogeneous nanoelectrodes;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=self‐supported nanoarrays&option=203" rel="nofollow">self‐supported nanoarrays;</a> <a style="color: #3E7FEB;" href="/search.html?doctypes=4_5_6_1-0_4-0_1_2_3_7_9&sertext=supercapacitors&option=203" rel="nofollow">supercapacitors;</a> </p> <div class="translation"> 机译:异质纳米电极;均匀纳米电极;自支撑纳米阵列;超级电容器; 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