A GW-based many-body approach to electrical conductivity in warm dense matter yields lower DC conductivity for beryllium at low temperatures from improved transition energies and at high temperatures from electron-electron scattering.
Lindl, Development of the indirect-drive approach to inertial confinement fusion and the target physics basis for ignition and gain, Physics of Plasmas2, 3933 (1995)
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A probe laser's cross-polarized scattering signal is proposed as a direct calorimeter for solenoidal plasma vorticity and its spatial structure.
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Capturing many-body effects in electrical conductivity of warm dense matter
A GW-based many-body approach to electrical conductivity in warm dense matter yields lower DC conductivity for beryllium at low temperatures from improved transition energies and at high temperatures from electron-electron scattering.
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Detecting Solenoidal Plasma Turbulence via Laser Polarization Rotation
A probe laser's cross-polarized scattering signal is proposed as a direct calorimeter for solenoidal plasma vorticity and its spatial structure.