Toward scalable and bias-stable optical phased arrays on lithium tantalate

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Yue, Gongcheng, Wang, Xuqiang, Miao, Yihan, Chen, Bowen, Zhan, Yangming, Zhou, Weiran, loahavilai, Phatham, Cai, Jiachen, Yu, Siyuan, Wang, Chengli, Ou, Xin, Li, Yang
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866910068329414656
author Yue, Gongcheng
Wang, Xuqiang
Miao, Yihan
Chen, Bowen
Zhan, Yangming
Zhou, Weiran
loahavilai, Phatham
Cai, Jiachen
Yu, Siyuan
Wang, Chengli
Ou, Xin
Li, Yang
author_facet Yue, Gongcheng
Wang, Xuqiang
Miao, Yihan
Chen, Bowen
Zhan, Yangming
Zhou, Weiran
loahavilai, Phatham
Cai, Jiachen
Yu, Siyuan
Wang, Chengli
Ou, Xin
Li, Yang
contents Ferroelectric materials are an ideal platform for high-speed reconfigurable photonic integrated circuits (PICs) for classical and quantum photonic computations, communications, and sensing. Most reconfigurable PIC devices achieve their functionalities via interference and are therefore highly sensitive to phase errors. Under static bias, carrier drift in ferroelectric waveguides induces continuous phase drift, creating a severe bottleneck for both PIC functionality and scalability. Here we propose achieving bias-stable and scalable ferroelectric PICs by exploiting the intrinsically low carrier drift of lithium tantalate (LT). Taking one of the PIC devices that is most sensitive to phase drift, the optical phased array (OPA), as an example, we designed and fabricated an integrated LT OPA that can keep the far-field main lobe 8 dB higher than side lobes for over 4 hours, representing at least a two-order-of-magnitude improvement over the state of the art. We demonstrated our device's capability in generating arbitrary spatiotemporal waveforms with a modulation frequency as low as 0.1 Hz, leading to practical applications in optical tweezers, trapped-ion quantum computers, adaptive optics for astronomy, AR, 3D printers, LiDAR, and free-space optical communications. Beyond OPA, our work establishes LT as a bias-stable, scalable, and high-speed PIC platform for large-scale classical and quantum photonic systems.
format Preprint
id arxiv_https___arxiv_org_abs_2603_22811
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Toward scalable and bias-stable optical phased arrays on lithium tantalate
Yue, Gongcheng
Wang, Xuqiang
Miao, Yihan
Chen, Bowen
Zhan, Yangming
Zhou, Weiran
loahavilai, Phatham
Cai, Jiachen
Yu, Siyuan
Wang, Chengli
Ou, Xin
Li, Yang
Optics
Ferroelectric materials are an ideal platform for high-speed reconfigurable photonic integrated circuits (PICs) for classical and quantum photonic computations, communications, and sensing. Most reconfigurable PIC devices achieve their functionalities via interference and are therefore highly sensitive to phase errors. Under static bias, carrier drift in ferroelectric waveguides induces continuous phase drift, creating a severe bottleneck for both PIC functionality and scalability. Here we propose achieving bias-stable and scalable ferroelectric PICs by exploiting the intrinsically low carrier drift of lithium tantalate (LT). Taking one of the PIC devices that is most sensitive to phase drift, the optical phased array (OPA), as an example, we designed and fabricated an integrated LT OPA that can keep the far-field main lobe 8 dB higher than side lobes for over 4 hours, representing at least a two-order-of-magnitude improvement over the state of the art. We demonstrated our device's capability in generating arbitrary spatiotemporal waveforms with a modulation frequency as low as 0.1 Hz, leading to practical applications in optical tweezers, trapped-ion quantum computers, adaptive optics for astronomy, AR, 3D printers, LiDAR, and free-space optical communications. Beyond OPA, our work establishes LT as a bias-stable, scalable, and high-speed PIC platform for large-scale classical and quantum photonic systems.
title Toward scalable and bias-stable optical phased arrays on lithium tantalate
topic Optics
url https://arxiv.org/abs/2603.22811