Femtojoule optical Kerr switching with milliwatt-peak-power in silicon-organic hybrid nanocavity

Y Yizheng Chen X Xiaoyan Gao G Gaoneng Dong W Wentao Gu J Jianhua Ning W Wentao Ye (Center of Artificial Photosynthesis for Solar Fuels and Department of Chemistry, School of Science and Research Center for Industries of the Future) Y Yilun Wang W Wenchan Dong L Lei Lei (Department of Molecular, Cell and Developmental Biology, University of California) J Jing Xu X Xinliang Zhang (State Key Laboratory of Chemical Biology, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China)

Abstract

Abstract All-optical Kerr switches enable ultrafast switching speeds, essential for next-generation communication and computing. However, their practical deployment is hindered by the intrinsically weak optical nonlinearity, which necessitates high switching energies. Although ultrashort pulses with Watt-level peak powers and extremely low duty cycles can alleviate this requirement, they are incompatible with real-world systems that demand high-duty-cycle data. In this work, we overcome this long-standing challenge by experimentally demonstrating an optical Kerr switch compatible with mainstream communication signals, while maintaining femtojoule-level switching energy. The breakthrough is achieved through a combination of exceptionally tight optical field confinement and a high-nonlinearity polymer material in a silicon-organic hybrid slot nanobeam cavity. This design reduces the required peak power to milliwatt-level, approximately two orders of magnitude lower than previous Kerr switches, enabling error-free switching of a 33%-duty-cycle 40-Gbit/s signal with 7.5 mW peak power and 63 fJ/bit switching energy. These achievements pave the way for chip-scale all-optical switches for ultrafast photonic signal processing.

Article Details

Volume / Issue Vol. 17, Issue 1
Published May 15, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (11)

Y

Yizheng Chen

X

Xiaoyan Gao

G

Gaoneng Dong

W

Wentao Gu

J

Jianhua Ning

W

Wentao Ye

Center of Artificial Photosynthesis for Solar Fuels and Department of Chemistry, School of Science and Research Center for Industries of the Future

Y

Yilun Wang

W

Wenchan Dong

L

Lei Lei

Department of Molecular, Cell and Developmental Biology, University of California

J

Jing Xu

X

Xinliang Zhang

State Key Laboratory of Chemical Biology, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China