September 2025

Journal

Synthetic-domain computing and neural networks using lithium niobate integrated nonlinear phononics

By:
Ji, Jun; Xi, Zichen; Thomas, Joseph; Srijanto, Bernadeta R; Kravchenko, Ivan I; Jin, Ming; Zhu, Yizheng ; Xiong, Wenjie; Shao, Linbo
Journal Name:
Nature Electronics
Page Number:
698-708
Volume:
8
Issue Number:
8
Publication Date:
September 16, 2025
View DOI Listing:
https://doi.org/10.1038/s41928-025-01436-9

Abstract

Analogue computing uses the physical behaviours of devices to provide energy-efficient arithmetic operations. However, scaling up analogue computing platforms by simply increasing the number of devices leads to challenges such as device-to-device variation. Here we report scalable analogue computing and neural networks in the synthetic frequency domain using an integrated nonlinear phononic platform on lithium niobate. This synthetic-domain computing is robust to device variations, as vectors and matrices are concurrently encoded at different frequencies within a single device, achieving a high throughput per area. Leveraging inherent nonlinearities, our device-aware neural network can perform a four-class classification task with an accuracy of 98.2%. The nonlinear phononic computing hardware also maintains consistent performance over a wide operational temperature range (characterized up to 192 °C). Our synthetic-domain computing combines single-device parallelism, inherent nonlinearity and environmental stability, and could be of use in edge computing applications in which power efficiency and environmental resilience are crucial.