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具有优异电化学性能的用于超级电容器的磷化镍异质纳 米粒子蜂窝状互联网络。

Honeycomb-Like Interconnected Network of Nickel Phosphide Heteronanoparticles with Superior Electrochemical Performance for Supercapacitors.

机构信息

School of Mechanical Engineering, Yonsei University , Seoul 120-749, South Korea.

Advanced Institute of Nanotechnology, Sungkyunkwan University , Suwon 440-746, South Korea.

出版信息

ACS Appl Mater Interfaces. 2017 Jul 5;9(26):21829-21838. doi: 10.1021/acsami.7b05384. Epub 2017 Jun 22.

Abstract

Transition-metal-based heteronanoparticles are attracting extensive attention in electrode material design for supercapacitors owing to their large surface-to-volume ratios and inherent synergies of individual components; however, they still suffer from limited interior capacity and cycling stability due to simple geometric configurations, low electrochemical activity of the surface, and poor structural integrity. Developing an elaborate architecture that endows a larger surface area, high conductivity, and mechanically robust structure is a pressing need to tackle the existing challenges of electrode materials. This work presents a supercapacitor electrode consisting of honeycomb-like biphasic NiP-NiP (NiP) nanosheets, which are interleaved by large quantities of nanoparticles. The optimized NiP delivers an ultrahigh specific capacity of 1272 C g at a current density of 2 A g, high rate capability, and stability. An asymmetric supercapacitor employing as-synthesized NiP as the positive electrode and activated carbon as the negative electrode exhibits significantly high power and energy densities (67.2 W h kg at 0.75 kW kg; 20.4 W h kg at 15 kW kg). These results demonstrate that the novel nanostructured NiP can be potentially applied in high-performance supercapacitors.

摘要

基于过渡金属的杂化纳米粒子由于其较大的表面积与体积比和各组分的固有协同作用,在超级电容器的电极材料设计中受到广泛关注;然而,由于简单的几何构型、表面电化学活性低以及较差的结构完整性,它们仍然存在内部容量和循环稳定性有限的问题。开发具有更大表面积、高导电性和机械坚固结构的精细结构是解决现有电极材料挑战的迫切需要。本工作提出了一种由类蜂窝双相 NiP-NiP(NiP)纳米片组成的超级电容器电极,这些纳米片由大量纳米颗粒交错而成。优化后的 NiP 在 2 A g 的电流密度下具有超高的比容量(1272 C g)、高倍率性能和稳定性。采用所合成的 NiP 作为正极、活性炭作为负极的非对称超级电容器表现出显著的高功率和能量密度(在 0.75 kW kg 时为 67.2 W h kg;在 15 kW kg 时为 20.4 W h kg)。这些结果表明,新型纳米结构 NiP 有望应用于高性能超级电容器。

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