高效抗反射氧化物电极的制备及其在生物医学检测和薄膜锂电池中的应用

Kuan-Jiuh Lin
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摘要

纳米材料在锂离子微电池的发展中具有巨大的潜力,可以帮助开发更小、更可靠的电源,以促进21世纪的生活。林宽久教授任职于台湾国立中兴大学化学系,主持界面光电实验室。他和他的团队领导高文寅博士正在努力解决纳米技术的空白,包括如何克服多孔半导体膜和电等离子体金属表面膜之间的强界面耦合。他们的研究有望在电子和光电子领域有广泛的应用。在最近的一个项目中,研究人员正致力于开发更高效的锂离子微电池(micro-LIBs),使用活性纳米结构的阳极材料,如由多孔碳、石墨烯和碳纳米管(CNTs)组成的碳纳米材料。研究人员已经开发出一种轻质、高倍率的基于碳纳米管的阳极系统,该系统在快速充电电池中具有很大的潜力。该团队还创造了金属掺杂的MnO2纳米墙,其具有相互网络的垂直定向三维(3D)多孔框架,直接连接到AgCNT修饰的集电极上,从而为lib提供了性能优越的阳极材料。研究人员还创造了一种新型的3D多孔支架阳极材料,这种材料是由硅卟啉珍珠链状纳米线制成的,它被放置在一束二氧化钛纳米线的表面。在世界上第一次,Lin和他的团队能够实现抗反射和电化学性能为基础的锐钛矿TiO2纳米线器件的表盘功能,具有高孔隙率交联几何结构,直接生长在透明导电玻璃上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preparation of high-efficiency anti-reflective oxide electrodes and their application in biomedical testing and thin-film lithium batteries
Nanomaterials hold great potential in the development of lithium-ion microbatteries and could assist in developing ever smaller and more reliable power sources to facilitate 21st Century life. Professor Kuan-Jiuh Lin is based in the Department of Chemistry, National Chung Hsing University, Taiwan, and runs the Interfacial Optical-Electronic (IOE) Lab. He and his team leader Dr Wen-Yin Ko are working to address gaps in nanotechnology, including how to conquer the strong interfacial coupling between the porous semiconductor membrane and the electro-plasmon metal-surface film. Their research is expected to have broad applications across electronics and optoelectronics. In a recent project, the researchers are working to develop more efficient lithium-ion microbatteries (micro-LIBs) using active nanostructured anode materials such as carbon nanomaterials composed of porous carbon, graphene and carbon nanotubes (CNTs). The researchers have developed a lightweight and high-rate CNT-based anode system that holds great potential for fast-charging batteries. The team has also created metal-doped MnO2 nanowalls with inter-networked vertically-oriented three-dimensional (3D) porous frameworks directly onto a AgCNT modified current collector, resulting in a superior performance anode material for LIBs. The researchers also created a novel 3D porous scaffold anode material of silicon–porphyrin pearl-chain-like nanowires which was placed onto the surface of a bundled titanium dioxide (TiO2) nanowire. In a world first, Lin and the team were able to achieve dial functionalities of antireflective and electrochemical properties-based anatase TiO2 nanowire devices with a high-porosity cross-linked geometry directly grown onto transparent conductive glass.
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