Time-dependent potential-functional embedding theory

ORAL

Abstract

We introduce a time-dependent potential-functional embedding theory (TD-PFET), in which atoms are grouped into subsystems. In TD-PFET, subsystems can be propagated by different suitable time-dependent quantum mechanical methods and their interactions can be treated in a seamless, first-principles manner. TD-PFET is formulated based on the time-dependent quantum mechanics variational principle. The action of the total quantum system is written as a functional of the time-dependent embedding potential, i.e., a potential-functional formulation. We derive the integral equation that such an embedding potential needs to satisfy. As proof-of-principle, we demonstrate TD-PFET for a Na4 cluster, in which each Na atom is treated as one subsystem and propagated by time-dependent Kohn-Sham density functional theory (TDDFT) using the adiabatic local density approximation (ALDA). Our results agree well with a direct TDDFT calculation on the whole Na4 cluster using ALDA. We envision that TD-PFET will ultimately be useful for studying ultrafast quantum dynamics in condensed matter, where key regions are solved by highly accurate time-dependent quantum mechanics methods, and unimportant regions are solved by faster, less accurate methods.

Authors

  • Chen Huang

    • Department of Scientific Computing, Florida State University, USA
  • Florian Libisch

    • Institute for Theoretical Physics, Vienna University of Technology, Austria
  • Qing Peng

    • Rensselaer Polytechnic Institute
    • Department of Mechanical, Aerospace and Nuclear Engineering, Rensselaer Polytechnic Institute, USA
  • Emily Carter

    • Department of Mechanical and Aerospace Engineering, Princeton University, USA
    • Department of Mechanical and Aerospace Engineering, Program in Applied and Computational Mathematics, and the Andlinger Center for Energy and the Envi