The critical role of point defects in improving the specific capacitance of δ-MnO(2) nanosheets

点缺陷在提高δ-MnO(2)纳米片比电容中的关键作用

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Abstract

3D porous nanostructures built from 2D δ-MnO(2) nanosheets are an environmentally friendly and industrially scalable class of supercapacitor electrode material. While both the electrochemistry and defects of this material have been studied, the role of defects in improving the energy storage density of these materials has not been addressed. In this work, δ-MnO(2) nanosheet assemblies with 150 m(2) g(-1) specific surface area are prepared by exfoliation of crystalline K(x)MnO(2) and subsequent reassembly. Equilibration at different pH introduces intentional Mn vacancies into the nanosheets, increasing pseudocapacitance to over 300 F g(-1), reducing charge transfer resistance as low as 3 Ω, and providing a 50% improvement in cycling stability. X-ray absorption spectroscopy and high-energy X-ray scattering demonstrate a correlation between the defect content and the improved electrochemical performance. The results show that Mn vacancies provide ion intercalation sites which concurrently improve specific capacitance, charge transfer resistance and cycling stability.

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