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Femtosecond temperature measurements of laser-shocked copper deduced from the intensity of the x-ray thermal diffuse scattering

  • J. S. Wark
  • , D. J. Peake
  • , T. Stevens
  • , P. G. Heighway
  • , Y. Ping
  • , P. Sterne
  • , B. Albertazzi
  • , S. J. Ali
  • , L. Antonelli
  • , M. R. Armstrong
  • , C. Baehtz
  • , O. B. Ball
  • , S. Banerjee
  • , A. B. Belonoshko
  • , C. A. Bolme
  • , V. Bouffetier
  • , R. Briggs
  • , K. Buakor
  • , T. Butcher
  • , S. Di Dio Cafiso
  • V. Cerantola, J. Chantel, A. Di Cicco, A. L. Coleman, J. Collier, G. Collins, A. J. Comley, F. Coppari, T. E. Cowan, G. Cristoforetti, H. Cynn, A. Descamps, F. Dorchies, M. J. Duff, A. Dwivedi, C. Edwards, J. H. Eggert, D. Errandonea, G. Fiquet, E. Galtier, A. Laso Garcia, H. Ginestet, L. Gizzi, A. Gleason, S. Goede, J. M. Gonzalez, M. G. Gorman, M. Harmand, N. Hartley, C. Hernandez-Gomez, A. Higginbotham, H. Höppner, O. S. Humphries, R. J. Husband, T. M. Hutchinson, H. Hwang, D. A. Keen, J. Kim, P. Koester, Z. Konopkova, D. Kraus, A. Krygier, L. Labate, A. E. Lazicki, Y. Lee, H. P. Liermann, P. Mason, M. Masruri, B. Massani, E. E. McBride, C. McGuire, J. D. McHardy, D. McGonegle, R. S. McWilliams, S. Merkel, G. Morard, B. Nagler, M. Nakatsutsumi, K. Nguyen-Cong, A. M. Norton, I. I. Oleynik, C. Otzen, N. Ozaki, S. Pandolfi, A. Pelka, K. A. Pereira, J. P. Phillips, C. Prescher, T. R. Preston, L. Randolph, D. Ranjan, A. Ravasio, R. Redmer, J. Rips, D. Santamaria-Perez, D. J. Savage, M. Schoelmerich, J. P. Schwinkendorf, S. Singh, J. Smith, R. F. Smith, A. Sollier, J. Spear, C. Spindloe, M. Stevenson, C. Strohm, T. A. Suer, M. Tang, M. Toncian, T. Toncian, S. J. Tracy, A. Trapananti, T. Tschentscher, M. Tyldesley, C. E. Vennari, T. Vinci, S. C. Vogel, T. J. Volz, J. Vorberger, J. T. Willman, L. Wollenweber, U. Zastrau, E. Brambrink, K. Appel, M. I. McMahon
  • University of Oxford
  • Lawrence Livermore National Laboratory
  • University of York
  • Institute of Radiooncology - OncoRay
  • University of Edinburgh
  • Central Laser Facility
  • Nanjing University
  • MST-8, Los Alamos National Laboratory
  • European XFEL GmbH
  • University of Milano-Bicocca
  • Université de Lille
  • University of Camerino
  • University of Rochester Laboratory for Laser Energetics
  • AWE - Aldermaston
  • LENS
  • Queen's University of Belfast
  • CELIA, Université Bordeaux i, UMR 5107 (CNRS, Bordeaux 1, CEA)
  • University of Valencia
  • Sorbonne Université
  • Stanford Linear Accelerator Center
  • University of South Florida, Tampa
  • Arts et Métiers ParisTech
  • c/o DESY
  • Harwell Campus
  • Hanyang University
  • Universität Rostock
  • Yonsei University
  • Université Joseph Fourier - Grenoble
  • University of Freiburg
  • Osaka University
  • UMass Amherst
  • Paul Scherrer Institut
  • CEA/UVSQ/CNRS
  • Université Paris-Saclay
  • Carnegie Science
  • LULI

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

4 Citations (Scopus)

Résumé

We present 50-fs, single-shot measurements of the x-ray thermal diffuse scattering (TDS) from copper foils that have been shocked via nanosecond laser ablation up to pressures above ∼ 135 GPa. We hence deduce the x-ray Debye-Waller factor, providing a temperature measurement. The targets were laser-shocked with the DiPOLE 100-X laser at the High Energy Density endstation of the European X-ray Free-Electron Laser. Single x-ray pulses, with a photon energy of 18 keV, were scattered from the samples and recorded on Varex detectors. Despite the targets being highly textured (as evinced by large variations in the elastic scattering) and with such texture changing upon compression, the absolute intensity of the azimuthally averaged inelastic TDS between the Bragg peaks is largely insensitive to these changes, and allowing for both Compton scattering and the low-level scattering from a sacrificial ablator layer provides a reliable measurement of T / Θ D 2 , where Θ D is the Debye temperature. We compare our results with the predictions of the SESAME 3336 and LEOS 290 equations of state for copper and find good agreement within experimental errors. We, thus, demonstrate that single-shot temperature measurements of dynamically compressed materials can be made via thermal diffuse scattering of XFEL radiation.

langue originaleAnglais
Numéro d'article155904
journalJournal of Applied Physics
Volume137
Numéro de publication15
Les DOIs
étatPublié - 21 avr. 2025

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