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Nanoscale optical pulse limiter enabled by refractory metallic quantum wells
Author(s) -
Haoliang Qian,
Shilong Li,
Yingmin Li,
ChingFu Chen,
Wenfan Chen,
Steven Edward Bopp,
Yeon Ui Lee,
Wei Xiong,
Zhaowei Liu
Publication year - 2020
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aay3456
Subject(s) - ultrashort pulse , optoelectronics , materials science , nanophotonics , optics , optical switch , nonlinear optics , limiter , quantum well , laser , physics , computer science , telecommunications
The past several decades have witnessed rapid development of high-intensity, ultrashort pulse lasers, enabling deeper laboratory investigation of nonlinear optics, plasma physics, and quantum science and technology than previously possible. Naturally, with their increasing use, the risk of accidental damage to optical detection systems rises commensurately. Thus, various optical limiting mechanisms and devices have been proposed. However, restricted by the weak optical nonlinearity of natural materials, state-of-the-art optical limiters rely on bulk liquid or solid media, operating in the transmission mode. Device miniaturization becomes complicated with these designs while maintaining superior integrability and controllability. Here, we demonstrate a reflection-mode pulse limiter (sub-100 nm) using nanoscale refractory films made of AlO/TiN/AlO metallic quantum wells (MQWs), which provide large and ultrafast Kerr-type optical nonlinearities due to the quantum size effect of the MQW. Functional multilayers consisting of these MQWs could find important applications in nanophotonics, nonlinear optics, and meta-optics.

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