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DOE OSTI · 2406509

Enhancing quantum utility: Simulating large-scale quantum spin chains on superconducting quantum computers

Abstract

We present the quantum simulation of the frustrated quantum spin- 1 2 antiferromagnetic Heisenberg spin chain with competing nearest-neighbor ( J 1 ) and next-nearest-neighbor ( J 2 ) exchange interactions in the real superconducting quantum computer with qubits ranging up to 100. In particular, we implement the Hamiltonian with the next-nearest neighbor exchange interaction in conjunction with the nearest-neighbor interaction on IBM's superconducting quantum computer and carry out the time evolution of the spin chain by employing the first-order Trotterization. Furthermore, our implementation of the second-order Trotterization for the isotropic Heisenberg spin chain, involving only nearest-neighbor exchange interaction, enables precise measurement of the expectation values of staggered magnetization observable across a range of up to 100 qubits. Notably, in both cases, our approach results in a constant circuit depth in each Trotter step, independent of the number of qubits. Our demonstration of the accurate measurement of expectation values for the large-scale quantum system using superconducting quantum computers designates the quantum utility of these devices for investigating various properties of many-body quantum systems. This will be a stepping stone to achieving the quantum advantage over classical ones in simulating quantum systems before the fault tolerance quantum era. Published by the American Physical Society 2024

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BibTeXRIS

Chowdhury, Talal Ahmed (ORCID:0000000201586598), Yu, Kwangmin (ORCID:000000030826074X), Shamim, Mahmud Ashraf (ORCID:0000000232540015), Kabir, M. L. (ORCID:0000000321425166), Sufian, Raza Sabbir (ORCID:0000000232634767). 2024-07-25. Enhancing quantum utility: Simulating large-scale quantum spin chains on superconducting quantum computers. https://doi.org/10.1103/physrevresearch.6.033107

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