Non-adiabatic preparation of critical ground states using superluminal quenches
ORAL
Abstract
We show that a space- and time-dependent quench protocol allows faster preparation of the ground state of critical theories than adiabatic protocols. Specifically, assuming the system initially resides in the ground state of a corresponding massive model, we show that a superluminally-moving `front' that locally quenches the mass, leaves behind it (in space) a state arbitrarily close to the ground state of the gapless model. The protocol takes time O(L) to produce the ground state of a system of size Ld (in d spatial dimensions), while a fully adiabatic protocol requires time O(L2) to produce a state with exponential accuracy in L. We present exact results for such quenches in free theories of bosons and fermions, and discuss implications for systems with interactions and ultra-violet features. Finally, we discuss results for such (and related) quenches in arbitrary conformal field theories.
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Presenters
Kartiek Agarwal
Departments of Electrical Engineering and Physics, Princeton University, Princeton University, Department of Electrical Engineering, Princeton University, Electrical Engineering, Princeton Univ
Authors
Kartiek Agarwal
Departments of Electrical Engineering and Physics, Princeton University, Princeton University, Department of Electrical Engineering, Princeton University, Electrical Engineering, Princeton Univ
Ravindra Bhatt
Department of Electrical Engineering, Princeton University, Departments of Electrical Engineering and Physics, Princeton University, Electrical Engineering, Princeton Univ, Electrical Engineering, Princeton University
Shivaji Sondhi
Departments of Electrical Engineering and Physics, Princeton University, Department of Physics, Princeton University