Optical transparency of LiF (100) shock compressed to ∼360 GPa

P P. Renganathan (Dynamic Compression Sector, Institute for Shock Physics, Argonne National Laboratory 1 , Lemont, Illinois 60439-4803,) Y Y. Toyoda (Dynamic Compression Sector, Institute for Shock Physics, Argonne National Laboratory 1 , Lemont, Illinois 60439-4803,) P P. Rigg (Dynamic Compression Sector, Institute for Shock Physics, Argonne National Laboratory 1 , Lemont, Illinois 60439-4803,) Y Y. M. Gupta (Institute for Shock Physics, Washington State University 2 , Pullman, Washington 99164-2816,)

Abstract

High-purity [100] lithium fluoride (LiF) is the most widely used optical window in dynamic compression experiments due to its wide bandgap and well-characterized mechanical response. Recent plate-impact experiments established the [100] LiF Hugoniot to ∼230 GPa and demonstrated shock-induced melting onset at 182 GPa with complete melting by 195 GPa; theoretical models predict LiF optical transparency to nearly 900 GPa. To experimentally examine the optical transparency of [100] LiF at higher pressures and in the liquid state, laser-driven shock experiments were performed at peak stresses ranging from 223 to 363 GPa. Optical response was examined by measuring the particle velocity histories at the Kapton/LiF interface using laser interferometry at 532 and 1550 nm wavelengths; in-material particle velocities were obtained using established refractive-index corrections. Continuous photonic Doppler velocimetry fringes were observed across the entire stress range, demonstrating that LiF remains transparent to 1550 nm light throughout the multi-megabar regime investigated. At 532 nm, fringe visibility depended on the reflector coating: aluminum mirrors provided signals to ∼235 GPa, while gold mirrors extended this limit to 270.5 GPa, indicating that the shorter-wavelength response is likely sensitive to experimental configuration rather than to the loss of LiF transparency. Continued optical transparency to at least 360 GPa indicates that shock-melted LiF does not display bandgap closure over the stress range explored. These results provide direct experimental constraints on the high-pressure optical response and establish LiF (100) as a robust optical window material for laser-driven dynamic compression experiments approaching 400 GPa.

Article Details

Volume / Issue Vol. 140, Issue 4
Published July 28, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (4)

P

P. Renganathan

Dynamic Compression Sector, Institute for Shock Physics, Argonne National Laboratory 1 , Lemont, Illinois 60439-4803,

Y

Y. Toyoda

Dynamic Compression Sector, Institute for Shock Physics, Argonne National Laboratory 1 , Lemont, Illinois 60439-4803,

P

P. Rigg

Dynamic Compression Sector, Institute for Shock Physics, Argonne National Laboratory 1 , Lemont, Illinois 60439-4803,

Y

Y. M. Gupta

Institute for Shock Physics, Washington State University 2 , Pullman, Washington 99164-2816,