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Holographic simulation of correlated electrons on a trapped ion quantum processor

Authors :
Daoheng Niu
Reza Haghshenas
Yuxuan Zhang
Michael Foss-Feig
Garnet Kin-Lic Chan
Andrew C. Potter
Publication Year :
2021
Publisher :
arXiv, 2021.

Abstract

We develop holographic quantum simulation techniques to prepare correlated electronic ground states in quantum matrix product state (qMPS) form, using far fewer qubits than the number of orbitals represented. Our approach starts with a holographic technique to prepare a compressed approximation to electronic mean-field ground-states, known as fermionic Gaussian matrix product states (GMPS), with a polynomial reduction in qubit- and (in select cases gate-) resources compared to existing techniques. Correlations are then introduced by augmenting the GMPS circuits in a variational technique which we denote GMPS+X. We demonstrate this approach on Quantinuum's System Model H1 trapped-ion quantum processor for 1$d$ models of correlated metal and Mott insulating states. Focusing on the $1d$ Fermi-Hubbard chain as a benchmark, we show that GMPS+X methods faithfully capture the physics of correlated electron states, including Mott insulators and correlated Luttinger liquid metals, using considerably fewer parameters than problem-agnostic variational circuits.<br />Comment: 16 pages, 10 figures

Details

Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....a16333f027682f68eab3c9d79e7627ef
Full Text :
https://doi.org/10.48550/arxiv.2112.10810