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Charge density waves in a quantum plasma

ORAL

Abstract

We analyze the instability of an unpolarized uniform quantum plasma consisting of two oppositely charged fermionic components with varying mass ratios against charge and spin density waves. Using density functional theory, we treat each component with the local spin density approximation and a rescaled exchange-correlation functional. Interactions between different components are treated with a mean-field approximation. In both two and three dimensions, we find leading unstable charge density wave modes in the second-order expansion of the energy functional, which would induce the transition to quantum liquid crystals. The transition point and the length of the wave vector are computed numerically. Discontinuous ranges of the wave vector are found for different mass ratios between the two components, indicating exotic quantum phase transitions. Phase diagrams are obtained, and a scaling relation is proposed to generalize the results to two-component fermionic plasmas with any mass scale. We discuss the implications of our results and directions for further improvement in treating quantum plasmas.

Presenters

  • Zhaoyu Han

    Department of Physics, Stanford University

Authors

  • Zhaoyu Han

    Department of Physics, Stanford University

  • Shiwei Zhang

    Center for Computational Quantum Physics, Flatiron Institute, Flatiron Institute, Center for Computational Quantum Physics (CCQ), Flatiron Institute, Center for Computational Quantum Physics, Simons foundation, CCQ, Flatiron Institute, Simons Foundation

  • Xi Dai

    Physics, Hong Kong University of Science and Technology, Physics Department, Hong Kong University of Science and Technology, Physics, Hong Kong University of Science of Technology, Hong Kong University of Science and Technology, Physics, The Hong Kong University of Science and Technology