TY - JOUR
T1 - Real-Time Wavefront Control of Multimode Fibers under Dynamic Perturbation
AU - Wang, Zhengyang
AU - Luo, Jiawei
AU - Shen, Yuecheng
AU - Wu, Daixuan
AU - Liang, Jiajun
AU - Liang, Jiaming
AU - Chen, Yujie
AU - Zhang, Zhiling
AU - Qi, Dalong
AU - Yao, Yunhua
AU - Deng, Lianzhong
AU - Sun, Zhenrong
AU - Zhang, Shian
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/1/22
Y1 - 2025/1/22
N2 - Multimode fibers (MMFs), which transmit multiple spatial modes simultaneously, are essential in imaging, communication, and sensing. However, mode crosstalk significantly impairs the clarity of transmitted signals. Wavefront shaping has emerged as an effective strategy to minimize these distortions. Given the dynamic environmental conditions under which MMFs operate, rapid technological adaptation is crucial. A high-speed full-field wavefront shaping system designed for real-time MMF control is developed. This system leverages probabilistic phase shaping, superpixel modulation, and a digital micromirror device (DMD) to achieve operational speeds of 38 ms per cycle for 400 spatial modes, translating to an average mode time of 95 µs. This rate sets a new record for DMD-based systems, pushing hardware limits. The system supports continuous operation at 11 Hz and maintains high-quality optical focus through MMFs under varying environmental conditions, with a focusing efficiency exceeding 50% of the theoretical maximum. Its compatibility with fluorescent guide stars enables transmission matrix characterization when direct access is unfeasible, broadening its applications. This high-speed full-field wavefront shaping system represents a significant breakthrough, enhancing the functionality and versatility of MMF-based applications.
AB - Multimode fibers (MMFs), which transmit multiple spatial modes simultaneously, are essential in imaging, communication, and sensing. However, mode crosstalk significantly impairs the clarity of transmitted signals. Wavefront shaping has emerged as an effective strategy to minimize these distortions. Given the dynamic environmental conditions under which MMFs operate, rapid technological adaptation is crucial. A high-speed full-field wavefront shaping system designed for real-time MMF control is developed. This system leverages probabilistic phase shaping, superpixel modulation, and a digital micromirror device (DMD) to achieve operational speeds of 38 ms per cycle for 400 spatial modes, translating to an average mode time of 95 µs. This rate sets a new record for DMD-based systems, pushing hardware limits. The system supports continuous operation at 11 Hz and maintains high-quality optical focus through MMFs under varying environmental conditions, with a focusing efficiency exceeding 50% of the theoretical maximum. Its compatibility with fluorescent guide stars enables transmission matrix characterization when direct access is unfeasible, broadening its applications. This high-speed full-field wavefront shaping system represents a significant breakthrough, enhancing the functionality and versatility of MMF-based applications.
KW - digital micromirror device
KW - guide star
KW - transmission matrix
KW - wavefront shaping
UR - https://www.scopus.com/pages/publications/85204389960
U2 - 10.1002/lpor.202400947
DO - 10.1002/lpor.202400947
M3 - 文章
AN - SCOPUS:85204389960
SN - 1863-8880
VL - 19
JO - Laser and Photonics Reviews
JF - Laser and Photonics Reviews
IS - 2
M1 - 2400947
ER -