Huang Zhiming, Zhou Wei, Huang Jingguo, Wu Jing, Gao Yanqing, Qu Yue, Chu Junhao
National Laboratory for Infrared Physics, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, 500 Yu Tian Road, Shanghai 200083, People's Republic of China.
Key Laboratory of Space Active Opto-Electronics Technology, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, 500 Yu Tian Road, Shanghai 200083, People's Republic of China.
Sci Rep. 2016 Mar 11;6:22938. doi: 10.1038/srep22938.
The coupling between photons and electrons is at the heart of many fundamental phenomena in nature. Despite tremendous advances in controlling electrons by photons in engineered energy-band systems, control over their coupling is still widely lacking. Here we demonstrate an unprecedented ability to couple photon-electron interactions in real space, in which the incident electromagnetic wave directly tailors energy bands of solid to generate carriers for sensitive photoconductance. By spatially coherent manipulation of metal-wrapped material system through anti-symmetric electric field of the irradiated electromagnetic wave, electrons in the metals are injected and accumulated in the induced potential well (EIW) produced in the solid. Respective positive and negative electric conductances are easily observed in n-type and p-type semiconductors into which electrons flow down from the two metallic sides under light irradiation. The photoconductivity is further confirmed by sweeping the injected electrons out of the semiconductor before recombination applied by sufficiently strong electric fields. Our work opens up new perspectives for tailoring energy bands of solids and is especially relevant to develop high effective photon detection, spin injection, and energy harvesting in optoelectronics and electronics.
光子与电子之间的耦合是自然界中许多基本现象的核心。尽管在工程能带系统中利用光子控制电子方面取得了巨大进展,但对它们耦合的控制仍然普遍缺乏。在此,我们展示了一种前所未有的在实空间中耦合光子 - 电子相互作用的能力,其中入射电磁波直接调整固体的能带以产生用于灵敏光电导的载流子。通过利用照射电磁波的反对称电场对金属包裹材料系统进行空间相干操纵,金属中的电子被注入并积累在固体中产生的感应势阱(EIW)中。在光照下,从两个金属侧向下流入电子的n型和p型半导体中很容易观察到各自的正、负电导。通过在复合之前利用足够强的电场将注入的电子扫出半导体,进一步证实了光电导性。我们的工作为调整固体能带开辟了新的前景,尤其与在光电子学和电子学中开发高效光子检测、自旋注入和能量收集相关。