The Future Chips Constellation & Department of Physics, Applied Physics and Astronomy, Rensselaer Polytechnic Institute, Troy, New York 12180, USA.
Nano Lett. 2010 May 12;10(5):1704-9. doi: 10.1021/nl100081j.
In this paper, we report a successful realization and integration of a gold two-dimensional hole array (2DHA) structure with semiconductor InAs quantum dot (QD). We show experimentally that a properly designed 2DHA-QD photodetector can facilitate a strong plasmonic-QD interaction, leading to a 130% absolute enhancement of infrared photoresponse at the plasmonic resonance. Our study indicates two key mechanisms for the performance improvement. One is an optimized 2DHA design that permits an efficient coupling of light from the far-field to a localized plasmonic mode. The other is the close spatial matching of the QD layers to the wave function extent of the plasmonic mode. Furthermore, the processing of our 2DHA is amenable to large scale fabrication and, more importantly, does not degrade the noise current characteristics of the photodetector. We believe that this demonstration would bring the performance of QD-based infrared detectors to a level suitable for emerging surveillance and medical diagnostic applications.
本文报道了一种成功实现和集成的金二维空穴阵列(2DHA)结构与半导体 InAs 量子点(QD)。我们实验表明,适当设计的 2DHA-QD 光电探测器可以促进强等离子体-QD 相互作用,从而在等离子体共振处产生 130%的红外光响应绝对增强。我们的研究表明了性能提高的两个关键机制。一个是优化的 2DHA 设计,它允许将远场的光有效地耦合到局域等离子体模式中。另一个是 QD 层与等离子体模式的波函数范围的紧密空间匹配。此外,我们的 2DHA 的加工适合大规模制造,更重要的是,不会降低光电探测器的噪声电流特性。我们相信,这种演示将使基于 QD 的红外探测器的性能达到适用于新兴监视和医疗诊断应用的水平。