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Warm dense matter (WDM) is now routinely created and probed in laboratories around the world, providing unprecedented insights into conditions achieved in stellar atmospheres, planetary interiors, and inertial confinement fusion experiments.
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Direct‐drive laser‐fusion experiments with the OMEGA, 60‐beam, > > 40 kJ, ultraviolet laser system
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Theoretical model of x-ray scattering as a dense matter probe
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FLYCHK: Generalized population kinetics and spectral model for rapid spectroscopic analysis for all elements
Chung HK, Chen MH, Morgan WL, Ralchenko Y, Lee RW · 2005
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Probing warm dense lithium by inelastic X-ray scattering
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Quantum Theory of the Electron Liquid
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The National Ignition Facility: Ushering in a new age for high energy density science
Moses EI, Boyd RN, Remington BA, Keane CJ, Al-Ayat R · 2009
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X-ray Thomson scattering in high energy density plasmas
Glenzer SH, Redmer R · 2009
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Temperature measurement through detailed balance in x-ray Thomson scattering
Döppner T, Landen OL, Lee HJ, Neumayer P, Regan SP, Glenzer SH · 2009
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First-principles equation-of-state table of deuterium for inertial confinement fusion applications
Hu SX, Militzer B, Goncharov VN, Skupsky S · 2011
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First light from SACLA
Pile D · 2011
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Change in Inertial Confinement Fusion Implosions upon Using an Ab Initio Multiphase DT Equation of State
Caillabet L, Canaud B, Salin G, Mazevet S, Loubeyre P · 2011
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Inelastic X-Ray Scattering from Shocked Liquid Deuterium
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Comparison between x-ray scattering and velocity-interferometry measurements from shocked liquid deuterium
Falk K, Regan SP, Vorberger J, Crowley BJB, Glenzer SH, Hu SX, et al · 2013
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Frontiers and Challenges in Warm Dense Matter
Graziani F, Desjarlais MP, Redmer R, Trickey SB, editors · 2014
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Ab initio equations of state for hydrogen (H-REOS.3) and helium (He-REOS.3) and their implications for the interior of brown dwarfs
Becker A, Lorenzen W, Fortney JJ, Nettelmann N, Schöttler M, Redmer R · 2014
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Equation of State Measurements of Warm Dense Carbon Using Laser-Driven Shock and Release Technique
Falk K, Gamboa EJ, Kagan G, Montgomery DS, Srinivasan B, Tzeferacos P, et al · 2014
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Fuel gain exceeding unity in an inertially confined fusion implosion
Hurricane OA, Callahan DA, Casey DT, Celliers PM, Cerjan C, Dewald EL, et al · 2014
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A higher-than-predicted measurement of iron opacity at solar interior temperatures
Bailey JE, Nagayama T, Loisel GP, Rochau GA, Blancard C, Colgan J, et al · 2015
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Review of pulsed power-driven high energy density physics research on Z at Sandia
Sinars D, Sweeney M, Alexander C, Ampleford D, Ao T, Apruzese J, et al · 2020
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Ab initio simulation of warm dense matter
Bonitz M, Dornheim T, Moldabekov ZA, Zhang S, Hamann P, Kählert H, et al · 2020
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The data-driven future of high-energy-density physics
Hatfield PW, Gaffney JA, Anderson GJ, Ali S, Antonelli L, Başeğmez du Pree S, et al · 2021
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Evidence of hydrogen-helium immiscibility at Jupiter-interior conditions
Brygoo S, Loubeyre P, Millot M, Rygg JR, Celliers PM, Eggert JH, et al · 2021
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Demonstration of a laser-driven, narrow spectral bandwidth x-ray source for collective x-ray scattering experiments
MacDonald MJ, Saunders AM, Bachmann B, Bethkenhagen M, Divol L, Doyle MD, et al · 2021
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Nanosecond formation of diamond and lonsdaleite by shock compression of graphite
Kraus D, Ravasio A, Gauthier M, Gericke DO, Vorberger J, Frydrych S, et al · 2016
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Inertial-confinement fusion with lasers
Betti R, Hurricane OA · 2016
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Linac Coherent Light Source: The first five years
Bostedt C, Boutet S, Fritz DM, Huang Z, Lee HJ, Lemke HT, et al · 2016
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Pair potentials for warm dense matter and their application to x-ray Thomson scattering in aluminum and beryllium
Harbour L, Dharma-wardana MWC, Klug DD, Lewis LJ · 2016
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X-ray Thomson Scattering in Warm Dense Matter without the Chihara Decomposition
Baczewski AD, Shulenburger L, Desjarlais MP, Hansen SB, Magyar RJ · 2016
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Formation of diamonds in laser-compressed hydrocarbons at planetary interior conditions
Kraus D, Vorberger J, Pak A, Hartley NJ, Fletcher LB, Frydrych S, et al · 2017
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Photon Beam Transport and Scientific Instruments at the European XFEL
Tschentscher T, Bressler C, Grünert J, Madsen A, Mancuso AP, Meyer M, et al · 2017
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Demonstration of an x-ray Raman spectroscopy setup to study warm dense carbon at the high energy density instrument of European XFEL
Voigt K, Zhang M, Ramakrishna K, Amouretti A, Appel K, Brambrink E, et al · 2021
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First-principles equation of state database for warm dense matter computation
Militzer B, González-Cataldo F, Zhang S, Driver KP, Soubiran Fmc · 2021
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Measuring the melting curve of iron at super-Earth core conditions
Kraus RG, Hemley RJ, Ali SJ, Belof JL, Benedict LX, Bernier J, et al · 2022
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Burning plasma achieved in inertial fusion
Zylstra AB, Hurricane OA, Callahan DA, Kritcher AL, Ralph JE, Robey HF, et al · 2022
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Accurate temperature diagnostics for matter under extreme conditions
Dornheim T, Böhme M, Kraus D, Döppner T, Preston TR, Moldabekov ZA, et al · 2022
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Böhme M, Moldabekov ZA, Vorberger J, Dornheim T · 2022
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The colliding planar shocks platform to study warm dense matter at the National Ignition Facility
MacDonald MJ, Di Stefano CA, Döppner T, Fletcher LB, Flippo KA, Kalantar D, et al · 2023
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Observing the onset of pressure-driven K-shell delocalization
Döppner T, Bethkenhagen M, Kraus D, Neumayer P, Chapman DA, Bachmann B, et al · 2023
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X-ray Thomson scattering absolute intensity from the f-sum rule in the imaginary-time domain
Dornheim T, Döppner T, Baczewski AD, Tolias P, Böhme MP, Moldabekov ZA, et al · 2023
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Electronic density response of warm dense matter
Dornheim T, Moldabekov ZA, Ramakrishna K, Tolias P, Baczewski AD, Kraus D, et al · 2023
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Imaginary-time correlation function thermometry: A new, high-accuracy and model-free temperature analysis technique for x-ray Thomson scattering data
Dornheim T, Böhme MP, Chapman DA, Kraus D, Preston TR, Moldabekov ZA, et al · 2023
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