Time-resolved Sensing of Meso-scale Shock Compression with Multilayer Photonic Crystal Structures

POSTER

Abstract

Multilayer Photonic Crystal structures can provide spatially and temporally resolved data needed to validate theoretical and computational models relevant for understanding shock compression in heterogeneous materials. Two classes of 1-D photonic crystal multilayer structures were studied: optical microcavities (OMC) and distributed Bragg reflectors (DBR). These 0.5 to \textasciitilde 5 micron thick structures were composed of SiO2, Al2O3, Ag, and PMMA layers fabricated primarily via e-beam evaporation. The multilayers have unique spectral signatures inherently linked to their time-resolved physical states. By observing shock-induced changes in these signatures, an optically-based pressure sensor was developed. Results to date indicate that both OMCs and DBRs exhibit nanosecond-resolved spectral shifts of several to 10s of nanometers under laser-driven shock compression loads of 0-10 GPa, with the magnitude of the shift strongly correlating to the shock load magnitude. Additionally, spatially and temporally resolved spectral shifts under heterogeneous laser-driven shock compression created by partial beam blocking have been successfully demonstrated. These results illustrate the potential for multilayer structures to serve as meso-scale sensors, capturing temporal and spatial pressure profile evolutions in shock-compressed heterogeneous materials, and revealing meso-scale pressure distributions across a shocked surface.

Authors

  • David Scripka

    Georgia Inst of Tech

  • Gyuhyon Lee

    Georgia Inst of Tech

  • Christopher J. Summers

    Georgia Inst of Tech

  • Naresh Thadhani

    Georgia Institute of Technology, School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA 30332, Georgia Inst of Tech