Ackerman Matthew M, Tang Xin, Guyot-Sionnest Philippe
James Franck Institute , The University of Chicago , 929 E. 57th Street , Chicago , Illinois 60637 , United States.
ACS Nano. 2018 Jul 24;12(7):7264-7271. doi: 10.1021/acsnano.8b03425. Epub 2018 Jul 9.
Colloidal quantum dots (CQDs) with a band gap tunable in the mid-wave infrared (MWIR) region provide a cheap alternative to epitaxial commercial photodetectors such as HgCdTe (MCT) and InSb. Photoconductive HgTe CQD devices have demonstrated the potential of CQDs for MWIR photodetection but face limitations in speed and sensitivity. Recently, a proof-of-concept HgTe photovoltaic (PV) detector was realized, achieving background-limited infrared photodetection at cryogenic temperatures. Using a modified PV device architecture, we report up to 2 orders of magnitude improvement in the sensitivity of the HgTe CQD photodetectors. A solid-state cation exchange method was introduced during device fabrication to chemically modify the interface potential, leading to an order of magnitude improvement of external quantum efficiency at room temperature. At 230 K, the HgTe CQD photodetectors reported here achieve a sensitivity of 10 Jones with a cutoff wavelength between 4 and 5 μm, which is comparable to that of commercial photodetectors. In addition to the chemical treatment, a thin-film interference structure was devised using an optical spacer to achieve near unity internal quantum efficiency upon reducing the operating temperature. The enhanced sensitivity of the HgTe CQD photodetectors reported here should motivate interest in a cheap, solution-processed MWIR photodetector for applications extending beyond research and military defense.
具有在中波红外(MWIR)区域可调带隙的胶体量子点(CQD)为诸如碲镉汞(MCT)和锑化铟等外延商业光电探测器提供了一种廉价的替代方案。光电导碲化汞CQD器件已证明CQD在MWIR光电探测方面的潜力,但在速度和灵敏度方面面临限制。最近,实现了一种概念验证的碲化汞光伏(PV)探测器,在低温下实现了背景受限的红外光电探测。使用改进的PV器件架构,我们报告了碲化汞CQD光电探测器的灵敏度提高了多达2个数量级。在器件制造过程中引入了一种固态阳离子交换方法,以化学方式改变界面电位,从而在室温下使外量子效率提高了一个数量级。在230K时,本文报道的碲化汞CQD光电探测器的灵敏度达到10琼斯,截止波长在4至5μm之间,这与商业光电探测器相当。除了化学处理外,还使用光学间隔层设计了一种薄膜干涉结构,以在降低工作温度时实现接近单位的内量子效率。本文报道的碲化汞CQD光电探测器灵敏度的提高应该会激发人们对一种廉价的、溶液处理的MWIR光电探测器的兴趣,其应用范围超出了研究和军事国防领域。