Optical Properties of Novel Materials for Optoelectronic Applications

Harish Mudila, Shivani Kataria, Ajay Kumar, P. Prasher
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引用次数: 2

Abstract

Energy generation and utilization had always been a prerequisite for human society, however, in the 21st century and after the pandemic of COVID-19 situations, the importance and demand for energy storage devices had been stretched to the next level. Smart energy storage devices are required to cover this indispensable demand so that the desired energy judiciously can be delivered whenever required. For this immense effort, a variety of materials viz. carbonaceous materials, transition metal composites, conducting polymers, etc. are being employed by the scientific community, which are equipped with advanced performance, flexibility, tunability, portability, and cost-effectiveness. Apart from these specific features, these energy harvesting materials are associated with inherent properties such as high electrical and optical conductivity, which place them as a potential contender to be used in energy harvest and storage devices. These energy storage devices can be based on the electrochemical, electrical, and optical properties of these conductive materials. To be particular, in this review the study is targeted at optically conductive materials. The optical conductivity of a material depends upon the band gap present in the conductive material under investigation, the lower the band gap higher is the chance of optical conductivity. This band gap of the material depends upon factors such as the material used, dopant, solvent applied, etc. This review brings the detail of optically conductive materials, understanding the factors affecting the optical conductivity and the methods to enhancing it so that the variety of applications such as solar cells, optoelectronics, photoelectronic, etc. can be improved.
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用于光电应用的新型材料的光学特性
能源的生产和利用一直是人类社会的先决条件,但在21世纪和新冠肺炎疫情之后,对储能设备的重要性和需求已经上升到一个新的水平。需要智能储能设备来满足这一不可或缺的需求,以便在需要时明智地提供所需的能源。为了这项巨大的努力,科学界正在采用各种材料,如碳质材料、过渡金属复合材料、导电聚合物等,这些材料具有先进的性能、灵活性、可调性、便携性和成本效益。除了这些特定的特性,这些能量收集材料还具有固有的特性,如高电导率和高导电性,这使它们成为能量收集和存储设备的潜在竞争者。这些储能装置可以基于这些导电材料的电化学、电学和光学性质。特别地,本文的研究是针对光导材料的。材料的光学导电性取决于所研究的导电材料中存在的带隙,带隙越低,光学导电性的机会越高。材料的带隙取决于所用的材料、掺杂剂、溶剂等因素。本文详细介绍了光导材料,了解了影响光导性的因素和提高光导性的方法,以期提高光导性在太阳能电池、光电子、光电子等领域的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nanoscience and Nanotechnology - Asia
Nanoscience and Nanotechnology - Asia Engineering-Engineering (all)
CiteScore
1.90
自引率
0.00%
发文量
35
期刊介绍: Nanoscience & Nanotechnology-Asia publishes expert reviews, original research articles, letters and guest edited issues on all the most recent advances in nanoscience and nanotechnology with an emphasis on research in Asia and Japan. All aspects of the field are represented including chemistry, physics, materials science, biology and engineering mainly covering the following; synthesis, characterization, assembly, theory, and simulation of nanostructures (nanomaterials and assemblies, nanodevices, nano-bubbles, nano-droplets, nanofluidics, and self-assembled structures), nanofabrication, nanobiotechnology, nanomedicine and methods and tools for nanoscience and nanotechnology.
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