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https://doi.org/10.34133/2020/9085782
Title: | Structuring Nonlinear Wavefront Emitted from Monolayer Transition-Metal Dichalcogenides | Authors: | Hong, X. Hu, G. Hu, G. Zhao, W. Wang, K. Sun, S. Zhu, R. Zhu, R. Wu, J. Liu, W. Loh, K.P. Wee, A.T.S. Wee, A.T.S. Wang, B. AlÃ, A. Qiu, C.-W. Lu, P. Lu, P. |
Issue Date: | 2020 | Publisher: | American Association for the Advancement of Science | Citation: | Hong, X., Hu, G., Hu, G., Zhao, W., Wang, K., Sun, S., Zhu, R., Zhu, R., Wu, J., Liu, W., Loh, K.P., Wee, A.T.S., Wee, A.T.S., Wang, B., AlÃ, A., Qiu, C.-W., Lu, P., Lu, P. (2020). Structuring Nonlinear Wavefront Emitted from Monolayer Transition-Metal Dichalcogenides. Research 2020 : 9085782. ScholarBank@NUS Repository. https://doi.org/10.34133/2020/9085782 | Rights: | Attribution 4.0 International | Abstract: | 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 pixellevel 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 ?ð2 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. Copyright © 2020 Xuanmiao Hong et al. | Source Title: | Research | URI: | https://scholarbank.nus.edu.sg/handle/10635/198095 | ISSN: | 2639-5274 | DOI: | 10.34133/2020/9085782 | Rights: | Attribution 4.0 International |
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