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Time Lens Photon Doppler Velocimetry (TL-PDV) for Extreme Measurements

Engineering and Technology

Time Lens Photon Doppler Velocimetry (TL-PDV) for Extreme Measurements

V. Kilic, C. S. Dimarco, et al.

Discover how Time Lens Photon Doppler Velocimetry (TL-PDV) revolutionizes the measurement of extreme surface velocities with impressive accuracy. Conducted by Velat Kilic and colleagues from Johns Hopkins University and Los Alamos National Laboratory, this research demonstrates a scalable solution for characterizing materials under extreme conditions, paving the way for advancements in inertial confinement fusion experiments.... show more
Abstract
Capturing extreme surface velocities with >50 km/s dynamic range, which arise in shock physics such as inertial confinement fusion (ICF), is beyond the reach of conventional photon Doppler velocimetry (PDV) systems due to the need for extremely large electrical bandwidth under such conditions. The recent ignition in ICF calls for new velocimetry that can measure velocities exceeding 100 km/s. Time lens PDV (TL-PDV) is a solution where the high frequency beat signal from a conventional PDV system is periodically temporally magnified in the optical domain using a time lens. Here we experimentally demonstrate TL-PDV for the first time, validate the performance over a 74 km/s velocity range with high accuracy using a temporal magnification factor of 7.6, and verify excellent agreement with conventional PDV for laser driven micro-flyer experiments. TL-PDV currently provides the largest velocity dynamic range among PDV systems and is scalable to even higher velocities, which makes it an ideal candidate for material characterization under the most extreme conditions such as optimizing fuel efficiency in ICF experiments.
Publisher
Nature Communications
Published On
Sep 04, 2024
Authors
Velat Kilic, Christopher S. DiMarco, Jacob M. Diamond, Pinghan Chu, K. T. Ramesh, Zhehui Wang, Mark A. Foster
Tags
photon Doppler velocimetry
time lens PDV
extreme surface velocities
material characterization
inertial confinement fusion
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