Observation of a non-Hermitian supersonic mode on a trapped-ion quantum computer
Yuxuan Zhang, Juan Carrasquilla, and Yong Baek Kim

TL;DR
This paper demonstrates the experimental observation of a non-Hermitian supersonic mode on a trapped-ion quantum computer, showcasing new phenomena and efficient simulation techniques for non-Hermitian quantum systems.
Contribution
It introduces a variational quantum compilation scheme for non-Hermitian systems, enabling resource-efficient simulations and experimental observation of novel non-Hermitian phenomena.
Findings
Observed a non-Hermitian supersonic mode on an 18-fermion chain
Achieved accurate correlation functions on a 20-qubit system
Provided an analytical example of exponential hardness in simulating non-Hermitian dynamics
Abstract
Quantum computers have long been anticipated to excel in simulating quantum many-body physics. While most previous work has focused on Hermitian physics, we demonstrate the power of variational quantum circuits for resource-efficient simulations of dynamical and equilibrium physics in non-Hermitian systems, revealing new phenomena beyond standard Hermitian quantum machines. Using a variational quantum compilation scheme for fermionic systems, we reduce gate count, save qubits, and eliminate the need for postselection, a major challenge in simulating non-Hermitian dynamics via standard Trotterization. Experimentally, we observed a supersonic mode in the connected density-density correlation function on an fermionic chain after a non-Hermitian, locally interacting quench, which would otherwise be forbidden by the Lieb-Robinson bound in a Hermitian system. Additionally, we…
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Taxonomy
TopicsQuantum Mechanics and Non-Hermitian Physics · Astrophysics and Cosmic Phenomena · Quantum chaos and dynamical systems
