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首页> 外文期刊>ACS Omega >Boosting the Utilization and Electrochemical Performances of Polyaniline by Forming a Binder-Free Nanoscale Coaxially Coated Polyaniline/Carbon Nanotube/Carbon Fiber Paper Hierarchical 3D Microstructure Composite as a Supercapacitor Electrode
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Boosting the Utilization and Electrochemical Performances of Polyaniline by Forming a Binder-Free Nanoscale Coaxially Coated Polyaniline/Carbon Nanotube/Carbon Fiber Paper Hierarchical 3D Microstructure Composite as a Supercapacitor Electrode

机译:通过形成无粘合剂的纳米级同轴涂覆的聚苯胺/碳纳米管/碳纤维纸等级3D微结构复合材料作为超级电容器电极来提高聚苯胺的利用和电化学性能

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摘要

Nanoscale polyaniline (PANI) is formed on a hierarchical 3D microstructure carbon nanotubes (CNTs)/carbon fiber paper (CFP) substrate via a one-step electrochemical polymerization method. The chemical and structural properties of the binder-free PANI/CNTs/CFP electrode are characterized by field emission scanning electron microscopy, transmission electron microscopy, Fourier transform infrared spectroscopy, and Raman spectroscopy. The specific capacitance of PANI/CNTs/CFP tested in a symmetric two-electrode system reaches 731.6 mF·cm~(–2) (1354.7 F·g~(–1)) at a current density of 1 mA·cm~(–2) (1.8 A·g~(–1)). The symmetric supercapacitor device demonstrates excellent cycling performance up to 10,000 cycles with a capacitance retention of 81.4% at a current density of 1 mA·cm~(–2) (1.8 A·g~(–1)). The results demonstrate that the binder-free CNTs/CFP composite is a strong backbone for depositing ultrathin PANI layers at a high mass loading. The hierarchical 3D microstructure PANI/CNTs/CFP provides enough space and transporting channels to form an efficient electrode–electrolyte interface for the supercapacitance reaction. The formed nanoscale PANI film coaxially coated on the sidewalls of CNTs enables efficient charge transfer and a shortened diffusion length. Hence, the utilization efficiency and electrochemical performances of PANI are significantly improved. The rational design strategy of a CNT-based binder-free hierarchical 3D microstructure can be used in preparing various advanced energy-storage electrodes for electrochemical energy-storage and conversion systems.
机译:通过一步电化学聚合方法在分层3D微结构碳纳米管(CNT)/碳纤维纸(CFP)纤维纸(CNTS)/碳纤维纸(CNTS)/碳纤维纸(CNTS)/碳纤维纸(CNTS)/碳纤维纸(CNT)中形成纳米级聚苯胺。粘合剂的PANI / CNTS / CFP电极的化学和结构性能通过现场发射扫描电子显微镜,透射电子显微镜,傅里叶变换红外光谱和拉曼光谱学特征。在对称的双电极系统中测试的PANI / CNT / CFP的比电容达到731.6mF·cm〜(-2)(1354.7f·g〜(-1)),电流密度为1 mA·cm〜( - 2)(1.8 A·G〜(-1))。对称超级电容器装置的优异循环性能明显高达10,000个循环,电容保留为81.4%,电流密度为1mA·cm〜(-2)(1.8A·g〜(-1))。结果表明,无粘合剂的CNT / CFP复合材料是用于在高质量负荷下沉积超薄粉的强骨架。分层3D微结构PANI / CNT / CFP提供足够的空间和传输通道,以形成用于超级电容反应的有效电极电解质界面。同轴地涂覆在CNT的侧壁上的形成的纳米级PANI膜使得能够有效电荷转移和缩短的扩散长度。因此,PANI的利用效率和电化学性能得到了显着改善。基于CNT的无粘合剂层级3D微结构的合理设计策略可用于制备用于电化学能量储存和转换系统的各种先进的能量存储电极。

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