Milliwatt-level UV generation using sidewall poled lithium niobate

C C. A. A. Franken S S. S. Ghosh C C. C. Rodrigues J J. Yang C C. J. Xin S S. Lu D D. Witt G G. Joe G G. S. Wiederhecker K K.-J. Boller M M. Lončar

Abstract

Abstract Integrated coherent sources of ultra-violet (UV) light are essential for a wide range of applications, from ion-based quantum computing and optical clocks to gas sensing and microscopy. Recently, approaches that use frequency upconversion have received considerable attention. Among these, the integrated thin-film lithium niobate (TFLN) photonic platform shows particular promise. However, to date, the high propagation losses and lack of reliable techniques for consistent poling of cm-long waveguides with small poling periods have impeded progress. Here, we present a sidewall poled lithium niobate (SPLN) waveguide approach that overcomes these obstacles and results in a two-orders-of-magnitude increase in generated UV power. We demonstrate SPLN waveguides featuring record-low propagation losses of 2.3 dB/cm, complete domain inversion across the waveguide cross-section, and an optimum 50% duty cycle, resulting in a record-high normalized conversion efficiency of 5050%W −1 cm −2 , and 4.2 mW of generated on-chip power at 390 nm wavelength. This advancement makes the TFLN platform a viable option for high-quality on-chip UV generation, benefiting emerging applications.

Article Details

Volume / Issue Vol. 17, Issue 1
Published April 21, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (11)

C

C. A. A. Franken

S

S. S. Ghosh

C

C. C. Rodrigues

J

J. Yang

C

C. J. Xin

S

S. Lu

D

D. Witt

G

G. Joe

G

G. S. Wiederhecker

K

K.-J. Boller

M

M. Lončar