Justin Smith
University of California, Irvine
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Featured researches published by Justin Smith.
Physical Review B | 2016
Kieron Burke; Justin Smith; Paul E. Grabowski; Aurora Pribram-Jones
Universal exact conditions guided the construction of most ground-state density functional approximations in use today. Here, we derive the relation between the entropy and Mermin free energy density functionals for thermal density functional theory. Both the entropy and sum of kinetic and electron-electron repulsion functionals are shown to be monotonically increasing with temperature, while the Mermin functional is concave downwards. Analogous relations are found for both exchange and correlation. The importance of these conditions is illustrated in two extremes: the Hubbard dimer and the uniform gas.
Physical Review B | 2016
Justin Smith; Aurora Pribram-Jones; Kieron Burke
Thermal density functional theory calculations often use the Mermin-Kohn-Sham scheme, but employ ground-state approximations to the exchange-correlation (XC) free energy. In the simplest solvable nontrivial model, an asymmetric Hubbard dimer, we calculate the exact many-body energies and the exact Mermin-Kohn-Sham functionals for this system and extract the exact XC free energy. For moderate temperatures and weak correlation, we find this approximation to be excellent. We extract various exact free-energy correlation components and the exact adiabatic connection formula.
arXiv: Chemical Physics | 2018
Justin Smith; Francisca Sagredo; Kieron Burke
Density functional theory (DFT) has become the most popular approach to electronic structure across disciplines, especially in material and chemical sciences. In 2016, at least 30,000 papers used DFT to make useful predictions or give insight into an enormous diversity of scientific problems, ranging from battery development to solar cell efficiency and far beyond. The success of this field has been driven by usefully accurate approximations based on known exact conditions and careful testing and validation. In the last decade, applications of DFT in a new area, warm dense matter, have exploded. DFT is revolutionizing simulations of warm dense matter including applications in controlled fusion, planetary interiors, and other areas of high energy density physics. Over the past decade or so, molecular dynamics calculations driven by modern density functional theory have played a crucial role in bringing chemical realism to these applications, often (but not always) in excellent agreement with experiment. This chapter summarizes recent work from our group on density functional theory at nonzero temperatures, which we call thermal DFT. We explain the relevance of this work in the context of warm dense matter, and the importance of quantum chemistry to this regime. We illustrate many basic concepts on a simple model system, the asymmetric Hubbard dimer.
Journal of Physics: Condensed Matter | 2015
Diego Carrascal; Jaime Ferrer; Justin Smith; Kieron Burke
Journal of Physics: Condensed Matter | 2017
Diego Carrascal; Jaime Ferrer; Justin Smith; Kieron Burke
arXiv: Chemical Physics | 2018
Justin Smith; Kieron Burke
Physical Review B | 2018
Justin Smith; Kieron Burke
Bulletin of the American Physical Society | 2018
Justin Smith; Kieron Burke
Bulletin of the American Physical Society | 2017
Justin Smith; Kieron Burke
American Journal of Physics | 2017
Justin Smith; Kieron Burke