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April 15, 2026Nature Materials4 citationsOpen Access

All-van der Waals microcavities for low-loss nonlinear photonics

ZWZhi-Yan WangPeking UniversityXCXiaoqi CuiAalto UniversityALAndreas C. LiapisAalto University

Key Points

  • To explore the use of van der Waals materials for creating a new platform for low-loss nonlinear photonic devices.
  • Developed a nanofabrication strategy for high-resolution patterning of various van der Waals materials.
  • Utilized vdW materials as intrinsic platforms instead of overlays on silicon-based systems.
  • Created microdisk resonators and photonic structures for testing nonlinear optical processes.
  • Achieved quality factors exceeding 10^6 in vdW microdisk resonators.
  • Enabled efficient nonlinear optical processes such as second-harmonic generation and optical parametric amplification.
  • Demonstrated thermal tunability across the full free-spectral-range.

Abstract

Abstract Van der Waals (vdW) materials have emerged as a promising platform for next-generation nanophotonics and optoelectronics. However, employing vdW materials as a core photonic integration platform, rather than as passive or active overlays on conventional silicon-based platforms, remains challenging, leaving their full potential untapped. Here we develop a nanofabrication strategy that enables high-resolution patterning across a broad range of vdW materials, including insulators, semiconductors, ferroelectrics and their heterostructures, and we show that they can be used as the intrinsic platform for low-loss microcavity nonlinear photonic devices such as microdisks, photonic crystals and metasurfaces. We demonstrate vdW microdisk resonators with quality ( Q ) factors exceeding 10 6 . Such Q factors enable efficient continuous-wave nonlinear optical processes, including second-harmonic generation, sum-frequency generation and optical parametric amplification, with full free-spectral-range thermal tunability. These results position vdW materials as key material building blocks for next-generation integrated photonics and optoelectronics.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69df2ae6e4eeef8a2a6afd2chttps://doi.org/10.1038/s41563-026-02574-x
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