arXiv Analytics

Sign in

arXiv:2011.08116 [quant-ph]AbstractReferencesReviewsResources

Quantum adiabatic theorem for unbounded Hamiltonians, with applications to superconducting circuits

Evgeny Mozgunov, Daniel A. Lidar

Published 2020-11-16Version 1

We present a new quantum adiabatic theorem that allows one to rigorously bound the adiabatic timescale for a variety of systems, including those described by unbounded Hamiltonians. Our bound is geared towards the qubit approximation of superconducting circuits, and presents a sufficient condition for remaining within the $2^n$-dimensional qubit subspace of a circuit model of $n$ qubits. The novelty of this adiabatic theorem is that unlike previous rigorous results, it does not contain $2^n$ as a factor in the adiabatic timescale, and it allows one to obtain an expression for the adiabatic timescale independent of the cutoff of the infinite-dimensional Hilbert space of the circuit Hamiltonian. As an application, we present an explicit dependence of this timescale on circuit parameters for a superconducting flux qubit, and demonstrate that leakage out of the qubit subspace is inevitable as the tunneling barrier is raised towards the end of a quantum anneal. We also discuss a method of obtaining a $2^n\times 2^n$ effective Hamiltonian that best approximates the true dynamics induced by slowly changing circuit control parameters.

Related articles: Most relevant | Search more
arXiv:1809.03124 [quant-ph] (Published 2018-09-10)
Approaching the adiabatic timescale with machine-learning
arXiv:1305.7154 [quant-ph] (Published 2013-05-30, updated 2014-04-01)
Colloquium: Understanding Quantum Weak Values: Basics and Applications
arXiv:quant-ph/0206126 (Published 2002-06-19)
Quantum Trajectories for Realistic Photodetection II: Application and Analysis