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首页> 外文期刊>Advanced Functional Materials >Fast, Air-Stable Infrared Photodetectors based on Spray-Deposited Aqueous HgTe Quantum Dots
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Fast, Air-Stable Infrared Photodetectors based on Spray-Deposited Aqueous HgTe Quantum Dots

机译:基于喷雾沉积的HgTe水溶液量子点的快速,空气稳定的红外光电探测器

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摘要

The ability to detect near-infrared and mid-infrared radiation has spawned great interest in colloidal HgTe quantum dots (QDs). In contrast to the studies focused on extending the spectral range of HgTe QD devices, the temporal response, another figure of merit for photodetectors, is rarely investigated. In this work, a single layer, aqueous HgTe QD based photoconductor structure with very fast temporal response (up to 1 MHz 3 dB bandwidth) is demonstrated. The device is fabricated using a simple spray-coating process and shows excellent stability in ambient conditions. The origin of the remarkably fast time response is investigated by combining light intensity-dependent transient photocurrent, temperature-dependent photocurrent, and field-effect transistor (FET) measurements. The charge carrier mobility, as well as the energy levels and carrier lifetimes associated with the trap states in the QDs, are identified. The results suggest that the temporal response is dominated by a fast bimolecular recombination process under high light intensity and by a trap-mediated recombination process at low light intensity. Interestingly, it was found that the gain and time response of aqueous HgTe QD-based photoconductors can be tuned by controlling the QD size and surfAcc chemistry, which provides a versatile approach to optimize the photodetectors with selectable sensitivity and operation bandwidth.
机译:检测近红外和中红外辐射的能力引起了对胶体HgTe量子点(QD)的极大兴趣。与专注于扩展HgTe QD装置的光谱范围的研究相比,时间响应是光电探测器的另一个优点,因此很少进行研究。在这项工作中,展示了具有非常快速的时间响应(高达1 MHz 3 dB带宽)的单层,基于HgTe QD的水性光电导体结构。该设备使用简单的喷涂工艺制造,在环境条件下显示出极好的稳定性。通过组合依赖于光强度的瞬态光电流,依赖于温度的光电流和场效应晶体管(FET)的测量,可以研究出快速响应的起源。确定了电荷载流子迁移率以及与量子点中的陷阱状态相关的能级和载流子寿命。结果表明,时间响应主要由高光强度下的快速双分子重组过程和低光强度下的陷阱介导的重组过程决定。有趣的是,发现可以通过控制QD大小和surfAcc化学性质来调节基于HgTe QD的HdTe水溶液的增益和时间响应,这提供了一种通用的方法来优化光电探测器的灵敏度和操作带宽。

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  • 来源
    《Advanced Functional Materials》 |2014年第1期|53-59|共7页
  • 作者单位

    Department of Electronic Engineering The Chinese University of Hong Kong New Territories, Hong Kong;

    Department of Electronic Engineering The Chinese University of Hong Kong New Territories, Hong Kong;

    Department of Physics and Materials Science and Centre for Functional Photonics (CFP) City University of Hong Kong Hong Kong S.A.R;

    Department of Electronic Engineering The Chinese University of Hong Kong New Territories, Hong Kong;

    Department of Physics and Materials Science and Centre for Functional Photonics (CFP) City University of Hong Kong Hong Kong S.A.R;

    Department of Physics and Materials Science and Centre for Functional Photonics (CFP) City University of Hong Kong Hong Kong S.A.R;

    Department of Physics and Materials Science and Centre for Functional Photonics (CFP) City University of Hong Kong Hong Kong S.A.R;

    Department of Electronic Engineering The Chinese University of Hong Kong New Territories, Hong Kong;

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