Topological Floquet Green's function zeros in NISQ emulators
ORAL
Abstract
Motivated by recent advances in digital quantum emulation using noisy intermediate-scale quantum (NISQ) devices and an increased interest in topological Green's function zeros in condensed matter systems we here study Green's function zeros in topological Floquet systems. We concentrate on interacting Kitaev-like Floquet chains (or equivalently transverse field Ising circuits) and introduce Floquet-Green's function based topological invariants for the corresponding symmetry class BDI. In the vicinity of special points in the free fermion phase diagram and using tailor-made interactions which lead to the Floquet version of symmetric mass generation, we analytically calculate both edge and bulk Green's functions. Just as in the case of continuum time evolution, topological bands of Green's function zeros may also contribute to the topological invariant. However, contrary to the case of continuum time evolution, Floquet Green's functions can have zeros even in the absence of interactions.
Finally, we also discuss an implementation of this Floquet system in a digital quantum emulator: We present a circuit which encodes the interaction under consideration and pin-point the observables carrying information about the topological Green's function boundary zeros.
Finally, we also discuss an implementation of this Floquet system in a digital quantum emulator: We present a circuit which encodes the interaction under consideration and pin-point the observables carrying information about the topological Green's function boundary zeros.
* Support for this research was provided by the Office of the Vice Chancellor for Research and Graduate Education at the University of Wisconsin–Madison with funding from the Wisconsin Alumni Research Foundation (EJK). This research was supported in part by grants NSF PHY-1748958 (EJK) and PHY- 2309135 to the Kavli Institute for Theoretical Physics (KITP) (EJK) and by the US Department of Energy, Office of Science, Basic Energy Sciences, under Award No. DE-SC0010821 (AM). EJK acknowledges hospitality by the KITP.
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Presenters
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Elio J König
- University of Wisconsin-Madison