Author:
Inoue Tomoyoshi,Junpei Yuasa,Itoh Seiya,Okuda Tatsuya,Funahashi Akinori,Takimoto Tetsuya,Kakue Takashi,Nishio Kenzo,Matoba Osamu,Awatsuji Yasuhiro
Abstract
AbstractSpatiotemporal information about light pulse propagation obtained with femtosecond temporal resolution plays an important role in understanding transient phenomena and light–matter interactions. Although ultrafast optical imaging techniques have been developed, it is still difficult to capture light pulse propagation spatiotemporally. Furthermore, imaging through a three-dimensional (3-D) scattering medium is a longstanding challenge due to the optical scattering caused by the interaction between light pulse and a 3-D scattering medium. Here, we propose a technique for ultrafast optical imaging of light pulses propagating inside a 3D scattering medium. We record an image of the light pulse propagation using the ultrashort light pulse even when the interaction between light pulse and a 3-D scattering medium causes the optical scattering. We demonstrated our proposed technique by recording converging, refracted, and diffracted propagating light for 59 ps with femtosecond temporal resolution.
Funder
Japan Society for the Promotion of Science
Publisher
Springer Science and Business Media LLC
Reference35 articles.
1. Yoon, S. et al. Deep optical imaging within complex scattering media. Nat. Rev. Phys. 2, 141–158 (2020).
2. Bianchi, S., Saglimbeni, F. & Di Leonardo, R. Holographic imaging reveals the mechanism of wall entrapment in swimming bacteria. Phys. Rev. X 7, 011010 (2017).
3. Cremons, D. R., Plemmons, D. A. & Flannigan, D. J. Femtosecond electron imaging of defect-modulated phonon dynamics. Nat. Commun. 7, 11230 (2016).
4. Tsampoula, X. et al. Femtosecond cellular transfection using a nondiffracting light beam. Appl. Phys. Lett. 91, 053902 (2007).
5. Mochizuki, F. et al. Single-event transient imaging with an ultra-high-speed temporally compressive multi-aperture CMOS image sensor. Opt. Express 24, 4155–4176 (2016).
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