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Wang, Cheng

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Wang

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Wang, Cheng

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Now showing 1 - 2 of 2
  • Publication

    Metasurface-assisted phase-matching-free second harmonic generation in lithium niobate waveguides

    (Springer Nature, 2017) Wang, Cheng; Li, Zhaoyi; Kim, Myoung-Hwan; Xiong, Xiao; Ren, Xi-Feng; Guo, Guang-Can; Yu, Nanfang; Loncar, Marko

    The phase-matching condition is a key aspect in nonlinear wavelength conversion processes, which requires the momenta of the photons involved in the processes to be conserved. Conventionally, nonlinear phase matching is achieved using either birefringent or periodically poled nonlinear crystals, which requires careful dispersion engineering and is usually narrowband. In recent years, metasurfaces consisting of densely packed arrays of optical antennas have been demonstrated to provide an effective optical momentum to bend light in arbitrary ways. Here, we demonstrate that gradient metasurface structures consisting of phased array antennas are able to circumvent the phase-matching requirement in on-chip nonlinear wavelength conversion. We experimentally demonstrate phase-matching-free second harmonic generation over many coherent lengths in thin film lithium niobate waveguides patterned with the gradient metasurfaces. Efficient second harmonic generation in the metasurface-based devices is observed over a wide range of pump wavelengths (λ = 1580–1650 nm).

  • Publication

    Electronically programmable photonic molecule

    (Springer Science and Business Media LLC, 2018-12-14) Zhang, Mian; Wang, Cheng; Hu, Yaowen; Shams Ansari, Amirhassan; Ren, Tianhao; Fan, Shanhui; Loncar, Marko

    Physical systems with discrete energy levels are ubiquitous in nature and are fundamental building blocks of quantum technology. Realizing controllable artificial atom- and molecule-like systems for light would enable coherent and dynamic control of the frequency, amplitude and phase of photons. In this work, we demonstrate a ‘photonic molecule’ with two distinct energy levels using coupled lithium niobate microring resonators and control it by external microwave excitation. We show that the frequency and phase of light can be precisely controlled by programmed microwave signals, using concepts of canonical two-level systems including Autler–Townes splitting, Stark shift, Rabi oscillation and Ramsey interference. Through such coherent control, we show on-demand optical storage and retrieval by reconfiguring the photonic molecule into a bright–dark mode pair. These results of dynamic control of light in a programmable and scalable electro-optic system open doors to applications in microwave signal processing, quantum photonic gates in the frequency domain and exploring concepts in optical computing8 and topological physics.