TY - JOUR
T1 - Compressed spectral–temporal coherent modulation femtosecond imaging
AU - He, Yu
AU - Yao, Yunhua
AU - Jin, Chengzhi
AU - Guo, Mengdi
AU - Cheng, Bozhang
AU - Lin, Wenzhang
AU - Ma, Hongmei
AU - Qi, Dalong
AU - Shen, Yuecheng
AU - Deng, Lianzhong
AU - Lai, Puxiang
AU - Sun, Zhenrong
AU - Zhang, Shian
N1 - Publisher Copyright:
© 2026 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement.
PY - 2026/4/20
Y1 - 2026/4/20
N2 - Ultrafast complex-field imaging, which simultaneously records both intensity and phase evolutions, provides a robust methodology for elucidating the transient phenomena, but existing techniques face significant challenges in simultaneously achieving ultrahigh-frame-rate, large-sequence-depth, and high-fidelity imaging of the complex fields on the femtosecond timescale. CST-CMFI integrates three techniques, including time-spectrum mapping, compressive spectral and coherent modulation imaging, and inherits their respective advantages in high-temporal-resolution, large-sequence-depth, and complex-field imaging. By compressing the time-space-varying intensity and phase information into a single-frame intensity measurement and subsequently reconstructing the spatiotemporal intensity and phase evolutions by compressive sensing-based algorithm, CST-CMFI enables single-shot complex-field imaging at frame rates of up to 10 trillion Hz. To validate the powerful imaging performance of CST-CMFI, we successfully observed femtosecond laser-induced plasma dynamics in water with both intensity and phase variations and carrier dynamics in ZnSe with phase variation dominating. Given its femtosecond complex-field imaging capability, CST-CMFI emerges as a powerful tool for the real-time visualization of transient events, and therefore has significant applications in both basic and applied sciences.
AB - Ultrafast complex-field imaging, which simultaneously records both intensity and phase evolutions, provides a robust methodology for elucidating the transient phenomena, but existing techniques face significant challenges in simultaneously achieving ultrahigh-frame-rate, large-sequence-depth, and high-fidelity imaging of the complex fields on the femtosecond timescale. CST-CMFI integrates three techniques, including time-spectrum mapping, compressive spectral and coherent modulation imaging, and inherits their respective advantages in high-temporal-resolution, large-sequence-depth, and complex-field imaging. By compressing the time-space-varying intensity and phase information into a single-frame intensity measurement and subsequently reconstructing the spatiotemporal intensity and phase evolutions by compressive sensing-based algorithm, CST-CMFI enables single-shot complex-field imaging at frame rates of up to 10 trillion Hz. To validate the powerful imaging performance of CST-CMFI, we successfully observed femtosecond laser-induced plasma dynamics in water with both intensity and phase variations and carrier dynamics in ZnSe with phase variation dominating. Given its femtosecond complex-field imaging capability, CST-CMFI emerges as a powerful tool for the real-time visualization of transient events, and therefore has significant applications in both basic and applied sciences.
UR - https://www.scopus.com/pages/publications/105035647926
U2 - 10.1364/OPTICA.587476
DO - 10.1364/OPTICA.587476
M3 - 文章
AN - SCOPUS:105035647926
SN - 2334-2536
VL - 13
SP - 721
EP - 728
JO - Optica
JF - Optica
IS - 4
ER -