光电流
物理
飞秒
光电效应
扫描隧道显微镜
电子
量子隧道
激光器
偏压
原子物理学
分子物理学
光电导性
吸收(声学)
光电子学
光学
凝聚态物理
电压
量子力学
作者
Benjamin Schröder,Ole Bunjes,Lara Wimmer,Katharina Kaiser,Georg A. Traeger,Thomas Kotzott,Claus Ropers,M. Wenderoth
标识
DOI:10.1088/1367-2630/ab74ac
摘要
Abstract We investigate photocurrents driven by femtosecond laser excitation of a (sub)-nanometer tunnel junction in an ultrahigh vacuum low-temperature scanning tunneling microscope (STM). The optically driven charge transfer is revealed by tip retraction curves showing a current contribution for exceptionally large tip-sample distances, evidencing a strongly reduced effective barrier height for photoexcited electrons at higher energies. Our measurements demonstrate that the magnitude of the photo-induced electron transport can be controlled by the laser power as well as the applied bias voltage. In contrast, the decay constant of the photocurrent is only weakly affected by these parameters. Stable STM operation with photoelectrons is demonstrated by acquiring constant current topographies. An effective non-equilibrium electron distribution as a consequence of multiphoton absorption is deduced by the analysis of the photocurrent using a one-dimensional potential barrier model.
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