Real-time density-matrix coupled-cluster approach for closed and open systems at finite temperature
- Creators
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Shushkov, Philip
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Miller, Thomas F., III
Abstract
We extend the coupled-cluster method to correlated quantum dynamics of both closed and open systems at finite temperatures using the thermofield formalism. The approach expresses the time-dependent density matrix in an exponential ansatz and describes time-evolution along the Keldysh path contour. A distinct advantage of the approach is exact trace-preservation as a function of time, ensuring conservation of probability and particle number. Furthermore, the method avoids the computation of correlated bra-states, simplifying the computational implementation. We develop the method in a thermal quasiparticle representation, which allows seamless connection to the projection method and diagrammatic techniques of the traditional coupled-cluster formalism. For comparison, we also apply the thermofield framework to the density-matrix renormalization-group method to obtain reference results for closed and open systems at finite temperature. We test the singles and doubles approximation to the density-matrix coupled-cluster method on the correlated electronic dynamics of the single-impurity Anderson model, demonstrating that the new method successfully captures the correlated dynamics of both closed systems at finite temperature and driven-dissipative open systems. This encouraging performance motivates future applications to nonequilibrium quantum many-body dynamics in realistic systems.
Additional Information
© 2019 Author(s). Submitted: 27 July 2019 • Accepted: 5 September 2019 • Published Online: 2 October 2019. P.S. acknowledges financial support from the German Science Foundation. T.F.M. acknowledges support from the DOE (Award No. DEFOA-0001912).Attached Files
Published - 1.5121749.pdf
Submitted - 1907.11962.pdf
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Additional details
- Eprint ID
- 99009
- Resolver ID
- CaltechAUTHORS:20191002-094950660
- Deutsche Forschungsgemeinschaft (DFG)
- Department of Energy (DOE)
- DEFOA-0001912
- Created
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2019-10-02Created from EPrint's datestamp field
- Updated
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2021-11-16Created from EPrint's last_modified field