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Improved performance of photoconductive gain hybrid UV detector by trap state engineering of ZnO nanoparticles

机译:ZnO纳米粒子的陷阱态工程改进了光电导增益混合紫外探测器的性能

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摘要

With the purpose of examining the impact of donor polymer on the performance of nanocomposite photodetectors (PDs) and to better understand the underlying physics, different wide-bandgap semiconducting polymers, poly(N-vinylcarbazole), poly(9, 9-di-n-octylfluorenyl-2, 7-diyl), and [9,9′-dioctyl-fluorene-2,7-diyl]-copoly[diphenyl-p-tolyl-amine-4,4′-diyl] (BFE), are mixed with ZnO nanoparticles (NPs) to fabricate hybrid UV PDs. Three different polymer matrix nanocomposites were investigated that differ in the electron-trap depth in the nanocomposite and also the carrier tunneling energy at the interface. All the fabricated PDs exhibit strong photoconductive gain characteristics which can be attributed to trapped electron accumulation and band bending at the cathode interface. Experimental results show that the manipulation of the photoactive nanocomposite improves the PD properties simultaneously, namely, the external quantum efficiency (EQE, ∼10~4%), the maximum detectivity (D∗, ∼10~(13) Jones), and the linear dynamic range (LDR, ∼85 dB). In addition, the gain bandwidth product of the device improves more than 50 times. Furthermore, the effect of the photogenerated carrier profile within the active layer is investigated experimentally by changing the direction of the incident light using a transparent cathode. Interestingly, under illumination through the Al cathode, faster photocurrent response, wider spectral range toward the deep UV region, and higher EQE in relatively low voltages are observed. These considerations might provide a general strategy to fabricate low-cost photoconductive PDs with a reasonably good combination of gain, response speed, LDR, and selectivity.
机译:为了检查供体聚合物对纳米复合光电探测器(PD)性能的影响并更好地了解其基本物理原理,使用了不同的带隙半导体聚合物,聚(N-乙烯基咔唑),聚(9,9-di-n) -辛基芴基-2,7-二基)和[9,9'-二辛基芴-2,7-二基]-共聚[二苯基-对甲苯胺-4,4'-二基](BFE)与ZnO纳米颗粒(NPs)混合以制造混合UV PD。研究了三种不同的聚合物基质纳米复合材料,它们在纳米复合材料中的电子陷阱深度以及界面处的载流子隧穿能量方面都不同。所有制造的PD均显示出强大的光电导增益特性,这归因于在阴极界面处捕获的电子积累和能带弯曲。实验结果表明,对光敏纳米复合材料的处理同时改善了PD性能,即外部量子效率(EQE,约10〜4%),最大检测率(D ∗,约10〜(13)Jones)和线性动态范围(LDR,〜85 dB)。此外,该器件的增益带宽积提高了50倍以上。此外,通过使用透明阴极改变入射光的方向,实验研究了活性层内光生载流子分布的影响。有趣的是,在通过铝阴极进行照明的情况下,观察到了更快的光电流响应,朝着深紫外区域的更宽的光谱范围以及在相对较低的电压下更高的EQE。这些考虑因素可能会提供一种通用的策略,以低成本,高增益,响应速度,LDR和选择性的良好组合来制造低成本的光电导PD。

著录项

  • 来源
    《Journal of Applied Physics》 |2017年第15期|154501.1-154501.10|共10页
  • 作者单位

    Organic Electronic Laboratory, Faculty of Electrical and Computer Engineering, K.N. Toosi University of Technology, Tehran, Iran;

    Laser and Plasma Research Institute, G.C., Shahid Beheshti University, Tehran, Iran;

    Organic Electronic Laboratory, Faculty of Electrical and Computer Engineering, K.N. Toosi University of Technology, Tehran, Iran;

    Organic Electronic Laboratory, Faculty of Electrical and Computer Engineering, K.N. Toosi University of Technology, Tehran, Iran;

    Laser and Plasma Research Institute, G.C., Shahid Beheshti University, Tehran, Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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