TY - JOUR
T1 - Hyperspectrally Compressed Ultrafast Photography
AU - Yang, Chengshuai
AU - Cao, Fengyan
AU - Qi, Dalong
AU - He, Yilin
AU - Ding, Pengpeng
AU - Yao, Jiali
AU - Jia, Tianqing
AU - Sun, Zhenrong
AU - Zhang, Shian
N1 - Publisher Copyright:
© 2020 American Physical Society.
PY - 2020/1/16
Y1 - 2020/1/16
N2 - The spatial, temporal, and spectral information in optical imaging play a crucial role in exploring the unknown world and unencrypting natural mysteries. However, the existing optical imaging techniques can only acquire the spatiotemporal or spatiospectral information of the object with the single-shot method. Here, we develop a hyperspectrally compressed ultrafast photography (HCUP) that can simultaneously record the spatial, temporal, and spectral information of the object. In our HCUP, the spatial resolution is 1.26 lp/mm in the horizontal direction and 1.41 lp/mm in the vertical direction, the temporal frame interval is 2 ps, and the spectral frame interval is 1.72 nm. Moreover, HCUP operates with receive-only and single-shot modes, and therefore it overcomes the technical limitation of active illumination and can measure the nonrepetitive or irreversible transient events. Using our HCUP, we successfully measure the spatiotemporal-spatiospectral intensity evolution of the chirped picosecond laser pulse and the photoluminescence dynamics. This Letter extends the optical imaging from three-to four-dimensional information, which has an important scientific significance in both fundamental research and applied science.
AB - The spatial, temporal, and spectral information in optical imaging play a crucial role in exploring the unknown world and unencrypting natural mysteries. However, the existing optical imaging techniques can only acquire the spatiotemporal or spatiospectral information of the object with the single-shot method. Here, we develop a hyperspectrally compressed ultrafast photography (HCUP) that can simultaneously record the spatial, temporal, and spectral information of the object. In our HCUP, the spatial resolution is 1.26 lp/mm in the horizontal direction and 1.41 lp/mm in the vertical direction, the temporal frame interval is 2 ps, and the spectral frame interval is 1.72 nm. Moreover, HCUP operates with receive-only and single-shot modes, and therefore it overcomes the technical limitation of active illumination and can measure the nonrepetitive or irreversible transient events. Using our HCUP, we successfully measure the spatiotemporal-spatiospectral intensity evolution of the chirped picosecond laser pulse and the photoluminescence dynamics. This Letter extends the optical imaging from three-to four-dimensional information, which has an important scientific significance in both fundamental research and applied science.
UR - https://www.scopus.com/pages/publications/85078457437
U2 - 10.1103/PhysRevLett.124.023902
DO - 10.1103/PhysRevLett.124.023902
M3 - 文章
C2 - 32004022
AN - SCOPUS:85078457437
SN - 0031-9007
VL - 124
JO - Physical Review Letters
JF - Physical Review Letters
IS - 2
M1 - 023902
ER -