Co-Design quantum simulation of nanoscale NMR

Fuente: arXiv
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Auteurs principaux: Algaba, Manuel G., Ponce-Martinez, Mario, Munuera-Javaloy, Carlos, Pina-Canelles, Vicente, Thapa, Manish, Taketani, Bruno G., Leib, Martin, de Vega, Inés, Casanova, Jorge, Heimonen, Hermanni
Format: Preprint
Publié: 2022
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author Algaba, Manuel G.
Ponce-Martinez, Mario
Munuera-Javaloy, Carlos
Pina-Canelles, Vicente
Thapa, Manish
Taketani, Bruno G.
Leib, Martin
de Vega, Inés
Casanova, Jorge
Heimonen, Hermanni
author_facet Algaba, Manuel G.
Ponce-Martinez, Mario
Munuera-Javaloy, Carlos
Pina-Canelles, Vicente
Thapa, Manish
Taketani, Bruno G.
Leib, Martin
de Vega, Inés
Casanova, Jorge
Heimonen, Hermanni
contents Quantum computers have the potential to efficiently simulate the dynamics of nanoscale NMR systems. In this work we demonstrate that a noisy intermediate-scale quantum computer can be used to simulate and predict nanoscale NMR resonances. In order to minimize the required gate fidelities, we propose a superconducting application-specific Co-Design quantum processor that reduces the number of SWAP gates by over 90 % for chips with more than 20 qubits. The processor consists of transmon qubits capacitively coupled via tunable couplers to a central co-planar waveguide resonator with a quantum circuit refrigerator (QCR) for fast resonator reset. The QCR implements the non-unitary quantum operations required to simulate nuclear hyperpolarization scenarios.
format Preprint
id arxiv_https___arxiv_org_abs_2202_05792
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Co-Design quantum simulation of nanoscale NMR
Algaba, Manuel G.
Ponce-Martinez, Mario
Munuera-Javaloy, Carlos
Pina-Canelles, Vicente
Thapa, Manish
Taketani, Bruno G.
Leib, Martin
de Vega, Inés
Casanova, Jorge
Heimonen, Hermanni
Quantum Physics
Quantum computers have the potential to efficiently simulate the dynamics of nanoscale NMR systems. In this work we demonstrate that a noisy intermediate-scale quantum computer can be used to simulate and predict nanoscale NMR resonances. In order to minimize the required gate fidelities, we propose a superconducting application-specific Co-Design quantum processor that reduces the number of SWAP gates by over 90 % for chips with more than 20 qubits. The processor consists of transmon qubits capacitively coupled via tunable couplers to a central co-planar waveguide resonator with a quantum circuit refrigerator (QCR) for fast resonator reset. The QCR implements the non-unitary quantum operations required to simulate nuclear hyperpolarization scenarios.
title Co-Design quantum simulation of nanoscale NMR
topic Quantum Physics
url https://arxiv.org/abs/2202.05792