Structuring Nonlinear Wavefront Emitted from Monolayer Transition-Metal Dichalcogenides
Author(s) -
Xuanmiao Hong,
Guangwei Hu,
Wenchao Zhao,
Kai Wang,
Shang Sun,
Rui Zhu,
Jing Wu,
Weiwei Liu,
Kian Ping Loh,
Andrew T. S. Wee,
Bing Wang,
Andrea Alù,
ChengWei Qiu,
Peixiang Lu
Publication year - 2020
Publication title -
research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.8
H-Index - 16
ISSN - 2639-5274
DOI - 10.34133/2020/9085782
Subject(s) - nonlinear system , nonlinear optics , materials science , plasmon , optics , physics , optoelectronics , laser , quantum mechanics
The growing demand for tailored nonlinearity calls for a structure with unusual phase discontinuity that allows the realization of nonlinear optical chirality, holographic imaging, and nonlinear wavefront control. Transition-metal dichalcogenide (TMDC) monolayers offer giant optical nonlinearity within a few-angstrom thickness, but limitations in optical absorption and domain size impose restriction on wavefront control of nonlinear emissions using classical light sources. In contrast, noble metal-based plasmonic nanosieves support giant field enhancements and precise nonlinear phase control, with hundred-nanometer pixel-level resolution; however, they suffer from intrinsically weak nonlinear susceptibility. Here, we report a multifunctional nonlinear interface by integrating TMDC monolayers with plasmonic nanosieves, yielding drastically different nonlinear functionalities that cannot be accessed by either constituent. Such a hybrid nonlinear interface allows second-harmonic (SH) orbital angular momentum (OAM) generation, beam steering, versatile polarization control, and holograms, with an effective SH nonlinearity χ (2) of ~25 nm/V. This designer platform synergizes the TMDC monolayer and plasmonic nanosieves to empower tunable geometric phases and large field enhancement, paving the way toward multifunctional and ultracompact nonlinear optical devices.
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