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Shape-Controlled Synthesis of Co2P Nanostructures and Their Application in Supercapacitors

机译:Co2P纳米结构的形状控制合成及其在超级电容器中的应用

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Co2P nanostructures with rod-like and flower-like morphologies have been synthesized by controlling the decomposition process of Co(acac)(3) in oleylamine system with triphenylphosphine as phosphorus source. Investigations indicate that the final morphologies of the products are determined by their peculiar phosphating processes. Electrochemical measurements manifest that the Co2P nanostructures exhibit excellent morphology-dependent supercapacitor properties. Compared with that of 284 F g(-1) at a current density of 1 A g(-1) for Co2P nanorods, the capacitance for Co2P nanoflowers reaches 416 F g(-1) at the same current density. Furthermore, an optimized asymmetric supercapacitor by using Co2P nanoflowers as anode and graphene as cathode is fabricated. It can deliver a high energy density of 8.8 Wh kg(-1) (at a high power density of 6 kW kg(-1)) and good cycling stability with over 97% specific capacitance remained after 6000 cycles, which makes the Co2P nanostructures potential applications in energy storage/conversion systems. This study paves the way to explore a new class of cobalt phosphide-based materials for supercapacitor applications.
机译:通过控制三苯基膦为磷源的油胺体系中Co(acac)(3)的分解过程,合成了具有棒状和花状形态的Co2P纳米结构。研究表明,产品的最终形态取决于其独特的磷化工艺。电化学测量表明,Co2P纳米结构表现出优异的形态学依赖性超级电容器性能。与Co2P纳米棒的电流密度为1 A g(-1)时的284 F g(-1)相比,Co2P纳米花在相同的电流密度下的电容达到416 F g(-1)。此外,以Co2P纳米花为阳极,石墨烯为阴极,制备了一种优化的不对称超级电容器。它可以提供8.8 Wh kg(-1)的高能量密度(在6 kW kg(-1)的高功率密度下)和良好的循环稳定性,在6000次循环后仍具有超过97%的比电容,这使得Co2P纳米结构成为可能。在储能/转换系统中的潜在应用。该研究为探索用于超级电容器的新型基于磷化钴的材料铺平了道路。

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