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用于储能应用的Cr掺杂MoO纳米片的电导率和电化学研究。

Electrical conductivity and electrochemical studies of Cr-doped MoO nanoflakes for energy storage applications.

作者信息

Bennie R Biju, Joel C, Raj A Nirmal Paul, Antony A Jerold, Pillai S Iyyam

机构信息

Postgraduate Department of Chemistry, St. John's College, Tirunelveli 627002 Tamil Nadu, India.

Department of Chemistry, St. Xavier's College (Autonomous), Tirunelveli 627002 Tamil Nadu, India.

出版信息

J Solid State Electrochem. 2023;27(1):271-280. doi: 10.1007/s10008-022-05319-3. Epub 2022 Nov 4.


DOI:10.1007/s10008-022-05319-3
PMID:36373059
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9638249/
Abstract

The growing demand for electricity has increased the interest of the researchers towards exploration of energy storing devices (ESDs). With the motif for developing electrochemical energy storage devices, this research work is focussed on the study of MoO nanoparticles and its doping with chromium as an efficient electrode material for energy storage applications. The nanoparticles were synthesized by hydrothermal method and were examined by powder X-ray diffraction, which determined the thermodynamically stable orthorhombic phase of MoO, and their morphologies were examined using scanning electron microscopy displaying flake-like structures. The typical vibrational bands of Mo-O were identified from Infra-red and Raman spectral analysis. The ultra violet diffuse reflectance spectra revealed the decrease in optical band gap after doping with chromium. The temperature dependent AC and DC conductivities were enhanced on doping. Electrochemical behaviour of the nanoparticles was probed by cyclic voltammetry (CV), electrochemical impedance spectroscopy (EIS) measurements and galvanostatic charge-discharge (GCD) analysis for which specific capacitance ( ) value of 334 Fg was achieved for Cr-doped MoO nanoparticles. The electrochemical performance of the sample was found to be increased after doping with Cr.

摘要

对电力日益增长的需求提高了研究人员对储能设备(ESD)探索的兴趣。出于开发电化学储能设备的目的,这项研究工作聚焦于对MoO纳米颗粒及其铬掺杂进行研究,以作为储能应用的高效电极材料。通过水热法合成了纳米颗粒,并通过粉末X射线衍射进行了检测,确定了MoO的热力学稳定正交相,使用扫描电子显微镜检查了它们的形态,显示出片状结构。通过红外和拉曼光谱分析确定了Mo - O的典型振动带。紫外漫反射光谱显示掺杂铬后光学带隙减小。掺杂后温度依赖的交流和直流电导率增强。通过循环伏安法(CV)、电化学阻抗谱(EIS)测量和恒电流充放电(GCD)分析探究了纳米颗粒的电化学行为,其中Cr掺杂的MoO纳米颗粒的比电容( )值达到334 Fg。发现掺杂Cr后样品的电化学性能有所提高。

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