Suspended thin-film lithium niobate modulator for broadband mid-infrared light modulation and frequency comb generation
Abstract The mid-infrared (MIR) spectral regime is central to applications including remote sensing, precision spectroscopy, higher harmonic generation, and free-space optical communication. However, coherent and broadband MIR modulation remains challenging owing to high optical loss, limited bandwidth, and large drive voltages in existing platforms. Here, we overcome the challenges by deploying a suspended thin-film lithium-niobate (TFLN) based electro-optic (EO) platform co-designed with high-performance traveling-wave microwave (MW) electrodes. We demonstrate a record-low V π , D C of 2.3 to 4.3 V over a broadband MIR bandwidth from 2.4 to 3.6 μm, and a 2.3-dB EO bandwidth of 40 GHz (extracted 3-dB bandwidth of 52 GHz), yielding a figure-of-merit of 19.3 GHz/V–more than an order of magnitude higher than the state-of-the-art. We demonstrate, for the first time, high-frequency V π , M W of 4.5-6.5 V in the 27-34 GHz range, and frequency-agile MIR EO frequency comb generation with a 10-dB optical bandwidth over 0.8 THz using a suspended phase modulator of 4-cm active modulation length. We further validate the platform in a free-space optical communication link. Our results establish a monolithic MIR photonic platform capable of powerful EO modulation and spectral synthesis, and present a significant step towards reconfigurable MIR sensing and communication systems on chip.
Authors
- Xinzhou Su (ORCID: https://orcid.org/0000-0003-2520-4475)
- Adam T. Heiniger (ORCID: https://orcid.org/0000-0003-0964-3048)
- Shaoyuan Ou
- Xinyi Ren
- Reshma Kopparapu
- Yue Zuo
- Zaijun Chen
- Chun-Ho Lee
- Moshe Tur
- Zile Jiang
- Huibin Zhou
- Mengjie Yu
- Wonho Lee
- Yue Yu
- Alan E. Willner
Institutions
- University of Southern California (US)
- Intel (United States) (US)
- Lawrence Berkeley National Laboratory (US)
- Holon Institute of Technology (IL)
- Tel Aviv University (IL)
- Toptica Photonics (Germany) (DE)
- University of California, Berkeley (US)
Publication Details
- Journal
- Nature Communications
- Published
- 2026-09-17
- DOI
- https://doi.org/10.1038/s41467-026-77674-y
- Citations
- 1
- Primary Topic
- Photorefractive and Nonlinear Optics
- Type
- article
- Field-Weighted Citation Impact
- 4.12