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Broadband Polarization-Sensitive Photodetector Based on Optically-Thick Films of Macroscopically Long Dense and Aligned Carbon Nanotubes

机译:基于宏观密集和排列的碳纳米管的光学厚膜的宽带偏振敏感光电探测器

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摘要

Increasing performance demands on photodetectors and solar cells require the development of entirely new materials and technological approaches. We report on the fabrication and optoelectronic characterization of a photodetector based on optically-thick films of dense, aligned, and macroscopically long single-wall carbon nanotubes. The photodetector exhibits broadband response from the visible to the mid-infrared under global illumination, with a response time less than 32 μs. Scanning photocurrent microscopy indicates that the signal originates at the contact edges, with an amplitude and width that can be tailored by choosing different contact metals. A theoretical model demonstrates the photothermoelectric origin of the photoresponse due to gradients in the nanotube Seebeck coefficient near the contacts. The experimental and theoretical results open a new path for the realization of optoelectronic devices based on three-dimensionally organized nanotubes.
机译:对光电探测器和太阳能电池的性能要求不断提高,要求开发全新的材料和技术方法。我们报告基于光致密的,对齐的和宏观上长的单壁碳纳米管的光学薄膜的光电探测器的制造和光电特性。光电探测器在全局照明下表现出从可见光到中红外的宽带响应,响应时间小于32μs。扫描光电流显微镜表明,信号起源于接触边缘,其幅度和宽度可以通过选择不同的接触金属来调整。一个理论模型证明了光响应的光热电起源是由于接触附近的纳米管塞贝克系数的梯度。实验和理论结果为基于三维组织的纳米管的光电器件的实现开辟了一条新途径。

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