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A review on the heterostructure nanomaterials for supercapacitor application

机译:超级电容器应用中的异质结构纳米材料综述

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摘要

The typical physical and chemical properties lead the nanomaterials to breakthrough in the field of energy storage especially, supercapacitor applications. The optimization of electrical conductivity, structural flexibility, band gap and charge carrier mobility are the key point to solve the issues in the electrochemical charge storage mechanism of supercapacitor. The semiconducting heterostructured nanomaterials are the best choice to store energy by near-surface ion adsorption along with additional contribution from fast reversible faradic reactions. The creation of active sites and defects in the grain boundary of the heterostructure materials results in multiple redox activity, superior ionic conductivity and short diffusion path. Therefore, sufficient researches enrooted to the doped and nano heterostructure electrode materials needs to be performed in order to exploit the high power and energy storage applications. This article reviews current trends in the synthesis of heterostructure electrode through hybridization of different electrochemical double layer capacitance (EDLC) and pseudocapacitive materials. This article also emphasize on the effect of doping on the electrode possessing both EDLC as well as the pseudocapacitance. In addition, the advantages of superlattice structure for the superior electrochemical properties are also discussed.
机译:典型的物理和化学性质使纳米材料在储能领域尤其是超级电容器应用领域取得突破。电导率,结构柔性,带隙和载流子迁移率的优化是解决超级电容器电化学电荷存储机理问题的关键。半导体异质结构纳米材料是通过近表面离子吸附以及快速可逆法拉第反应的额外贡献来存储能量的最佳选择。异质结构材料的晶界中活性位点和缺陷的产生导致多重氧化还原活性,优异的离子电导率和较短的扩散路径。因此,为了利用高功率和能量存储应用,需要进行充分的研究以扎根到掺杂和纳米异质结构电极材料。本文回顾了通过混合不同的电化学双层电容(EDLC)和伪电容材料来合成异质结构电极的当前趋势。本文还强调了掺杂对同时具有EDLC和伪电容的电极的影响。此外,还讨论了超晶格结构具有优异的电化学性能的优点。

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