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首页> 外文期刊>Nanoscale >CoSe2 hollow microspheres, nano-polyhedra and nanorods as pseudocapacitive Mg-storage materials with fast solid-state Mg2+ diffusion kinetics
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CoSe2 hollow microspheres, nano-polyhedra and nanorods as pseudocapacitive Mg-storage materials with fast solid-state Mg2+ diffusion kinetics

机译:CoSe2中空微球,nano-polyhedra和纳米棒作为pseudocapacitive Mg-storage材料与快速固态Mg2 +扩散动力学

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摘要

CoSe2 materials with different nanostructures are used as pseudocapacitive Mg-storage cathodes, which exhibit fast solid-state Mg2+ ions diffusion kinetics. In this work, CoSe2 with different nanostructures including hollow microspheres (H-CoSe2), nano-polyhedra (P-CoSe2) and nanorods (R-CoSe2) are fabricated by using facile one-step hydrothermal methods, and used as pseudocapacitive electrodes for rechargeable Mg batteries. It is observed that R-CoSe2 exhibits the highest reversible capacity of 233 mA h g(-1) at 50 mA g(-1) and an excellent rate capability of 116 mA h g(-1) at 500 mA g(-1), ascribing to the 1D nanorod structure which facilitates the solid-state Mg2+ diffusion. Benefitting from the stable hierarchical structure, H-CoSe2 exhibits a superior long-term cycling stability of 350 cycles. A mechanism study indicates that the redox reaction reversibly occurs between CoSe2 and metallic Co-0. Further investigation demonstrates that the fast solid-state Mg2+ diffusion kinetics and surface-controlled pseudocapacitive behavior enhance the electrochemical performance. This work highlights a novel and efficient Mg-storage strategy of using pseudocapacitive materials, and the performance and solid-state Mg2+ diffusion kinetics of CoSe2 could be optimized by rational structural tailoring.
机译:CoSe2与不同的纳米结构材料用作pseudocapacitive Mg-storage阴极,表现出迅速固态Mg2 +离子扩散动力学。不同的纳米结构包括空心微球(H-CoSe2) nano-polyhedra (P-CoSe2)和纳米棒(R-CoSe2)是利用构建的简单一步水热方法和作为pseudocapacitive电极充电毫克电池。最高的可逆容量233毫安h g (1)马在50 g(1)和一个优秀的能力马116 h g马(1)在500 g(1),将一维奈米棒结构,促进了固态Mg2 +扩散。稳定的层次结构,H-CoSe2展品优越的350年的长期循环稳定性周期。氧化还原反应可逆CoSe2之间发生和金属Co-0。表明快速固态Mg2 +扩散动力学和地面控制pseudocapacitive行为增强电化学性能。一种新型和高效的Mg-storage策略使用pseudocapacitive材料,性能和固态Mg2 +扩散CoSe2动力学可以通过合理的优化结构性调整。

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