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Quantum Simulation of Z2 Lattice Gauge theory with minimal resources

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arxiv 2206.08909 v2 pith:RUJZYHCI submitted 2022-06-17 quant-ph

Quantum Simulation of Z2 Lattice Gauge theory with minimal resources

classification quant-ph
keywords theorygaugequantumcircuitfermionicfieldsimulatesimulating
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The quantum simulation of fermionic gauge field theories is one of the anticipated uses of quantum computers in the NISQ era. Recently work has been done to simulate properties of the fermionic Z2 gauge field theory in (1+1) D and the pure gauge theory in (2+1) D. In this work, we investigate various options for simulating the fermionic Z2 gauge field theory in (2+1) D. To simulate the theory on a NISQ device it is vital to minimize both the number of qubits used and the circuit depth. In this work we propose ways to optimize both criteria for simulating time dynamics. In particular, we develop a new way to simulate this theory on a quantum computer, with minimal qubit requirements. We provide a quantum circuit, simulating a single first order Trotter step, that minimizes the number of 2-qubit gates needed and gives comparable results to methods requiring more qubits. Furthermore, variational approaches are investigated that allow to further decrease the circuit depth.

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  1. Effects of monitoring on entanglement dynamics for $1+1$D $\mathbb Z_2$ lattice gauge theory

    quant-ph 2026-03 conditional novelty 5.0

    In the no-click limit, both local and non-local monitoring of a 1+1D Z2 lattice gauge theory produce late-time entanglement saturation values that are independent of system size, giving no evidence of a measurement-in...