DOE OSTI · 2575467
Light-Matter Interaction in Ultrastable Tunneling Nanogaps
Abstract
Light emission and detection through tunnel junctions have emerged as a promising platform for studying nanoscale light–matter interactions, including electroluminescence and photoassisted transport. However, controlling these interactions in the tunneling regime has been challenging due to complex underlying mechanisms that remain poorly understood. A major obstacle is the difficulty in forming stable junctions that can function reliably over extended periods. In this study, we fabricate ultrastable tunneling junctions consisting of epitaxial indium–tin-oxide, epitaxial lutetium oxide, and gold. With their stable and consistent tunneling currents, we investigate photon-assisted transport phenomena using simple direct-current detection. Our results demonstrate that optical rectification is the primary contributor to the laser-induced current, alongside thermal effects and hot-electron currents. Furthermore, owing to their epitaxial nature and high breakdown threshold, this ultrastable platform holds promise for future real-world applications, including nanoscale light sources and multifunctional photodetectors.
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Tang, Yuankai [Emory Univ., Atlanta, GA (United States)] (ORCID:0000000182400099), Prakash, Saurav [National Univ. of Singapore (Singapore)], Nandi, Proloy [National Univ. of Singapore (Singapore)], Ariando, Ariando [National Univ. of Singapore (Singapore)] (ORCID:000000020598426X), Agrawal, Amit [Univ. of Cambridge (United Kingdom); Kyung Hee Univ., Seoul (Korea, Republic of)] (ORCID:0000000296197623), Harutyunyan, Hayk [Emory Univ., Atlanta, GA (United States)] (ORCID:000000030495746X). 2025-07-23. Light-Matter Interaction in Ultrastable Tunneling Nanogaps. https://doi.org/10.1021/acsnano.5c03217
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