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首页> 外文期刊>Nano Energy >Hierarchically assembled tubular shell-core-shell heterostructure of hybrid transition metal chalcogenides for high-performance supercapacitors with ultrahigh cyclability
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Hierarchically assembled tubular shell-core-shell heterostructure of hybrid transition metal chalcogenides for high-performance supercapacitors with ultrahigh cyclability

机译:具有超高自由性的高性能超级电容器的杂交过渡金属硫胺化物的分层组装的管状壳 - 壳壳异质结构

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Abstract Pseudo-capacitive transition metal chalcogenides have recently received considerable attention as a promising class of materials for high performance supercapacitors (SCs) due to their superior intrinsic conductivity to circumvent the limitations of corresponding transition metal oxides with relatively poor conductivity. However, the important challenge associated with the utilization of such high-capacitive electrode materials is the development of desirably structured electrode materials, enabling efficient and rapid Faradaic redox reactions and ultra long-term cycling. Here, we propose a hierarchically integrated hybrid transition metal (Cu-Ni) chalcogenide shell-core-shell (HTMC-SCS) tubular heterostructure using a facile bottom-up synthetic approach. The resultant HTMC-SCS electrode exhibits a high volumetric capacitance of 25.9Fcm?3 at a current density of 2mAcm?2. Furthermore, asymmetric SCs based on an HTMC-SCS heterostructured electrode demonstrate a high power density (770mWcm?3) and an energy density (2.63mWhcm?3) as well as an ultrahigh reversible capacity with a capacitance retention of 84% and a long-term cycling stability of over 10,000 cycles. Based on experimental results and density functional theory calculations, these remarkably improved electrochemical features are discussed and explained in terms of the unique combination of the conductive CuS core an
机译:<![cdata [ 抽象 伪电容过渡金属硫属化物最近由于其优越的内在电导率而导致高性能超级电容器(SCS)的有希望的材料等级。为了规避相应过渡金属氧化物的局限性,导电性相对较差。然而,与利用这种高电容电极材料相关的重要挑战是理想的结构化电极材料的发展,能够有效,野生氧化还原反应和超长期循环。在这里,我们提出了一种分层集成的混合动力学过渡金属(Cu-Ni)硫属化物壳壳 - 壳 - 壳 - 壳(HTMC-SCS)管状异质结构,使用宽度自下而上的合成方法。得到的HTMC-SCS电极表现出高容量电容为25.9 F CM 3 < / ce:sup>在电流密度为2 ma cm ?2 。此外,基于HTMC-SCS异质结构电极的不对称SCS表现出高功率密度(770 MW CM 3 )和能量密度(2.63 mw h cm ?3 )以及超高可逆容量,电容保留为84%,长期循环稳定性超过10,000个循环。基于实验结果和密度泛函理论计算,这些显着改善的电化学特征是在导电CUS核心的独特组合方面讨论和解释的

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