Programmable Heisenberg interactions between Floquet qubits

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Nguyen, Long B., Kim, Yosep, Hashim, Akel, Goss, Noah, Marinelli, Brian, Bhandari, Bibek, Das, Debmalya, Naik, Ravi K., Kreikebaum, John Mark, Jordan, Andrew N., Santiago, David I., Siddiqi, Irfan
Natura: Preprint
Pubblicazione: 2022
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866911943433912320
author Nguyen, Long B.
Kim, Yosep
Hashim, Akel
Goss, Noah
Marinelli, Brian
Bhandari, Bibek
Das, Debmalya
Naik, Ravi K.
Kreikebaum, John Mark
Jordan, Andrew N.
Santiago, David I.
Siddiqi, Irfan
author_facet Nguyen, Long B.
Kim, Yosep
Hashim, Akel
Goss, Noah
Marinelli, Brian
Bhandari, Bibek
Das, Debmalya
Naik, Ravi K.
Kreikebaum, John Mark
Jordan, Andrew N.
Santiago, David I.
Siddiqi, Irfan
contents The fundamental trade-off between robustness and tunability is a central challenge in the pursuit of quantum simulation and fault-tolerant quantum computation. In particular, many emerging quantum architectures are designed to achieve high coherence at the expense of having fixed spectra and consequently limited types of controllable interactions. Here, by adiabatically transforming fixed-frequency superconducting circuits into modifiable Floquet qubits, we demonstrate an XXZ Heisenberg interaction with fully adjustable anisotropy. This interaction model is on one hand the basis for many-body quantum simulation of spin systems, and on the other hand the primitive for an expressive quantum gate set. To illustrate the robustness and versatility of our Floquet protocol, we tailor the Heisenberg Hamiltonian and implement two-qubit iSWAP, CZ, and SWAP gates with estimated fidelities of 99.32(3)%, 99.72(2)%, and 98.93(5)%, respectively. In addition, we implement a Heisenberg interaction between higher energy levels and employ it to construct a three-qubit CCZ gate with a fidelity of 96.18(5)%. Importantly, the protocol is applicable to various fixed-frequency high-coherence platforms, thereby unlocking a suite of essential interactions for high-performance quantum information processing. From a broader perspective, our work provides compelling avenues for future exploration of quantum electrodynamics and optimal control using the Floquet framework.
format Preprint
id arxiv_https___arxiv_org_abs_2211_10383
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Programmable Heisenberg interactions between Floquet qubits
Nguyen, Long B.
Kim, Yosep
Hashim, Akel
Goss, Noah
Marinelli, Brian
Bhandari, Bibek
Das, Debmalya
Naik, Ravi K.
Kreikebaum, John Mark
Jordan, Andrew N.
Santiago, David I.
Siddiqi, Irfan
Quantum Physics
Superconductivity
Applied Physics
The fundamental trade-off between robustness and tunability is a central challenge in the pursuit of quantum simulation and fault-tolerant quantum computation. In particular, many emerging quantum architectures are designed to achieve high coherence at the expense of having fixed spectra and consequently limited types of controllable interactions. Here, by adiabatically transforming fixed-frequency superconducting circuits into modifiable Floquet qubits, we demonstrate an XXZ Heisenberg interaction with fully adjustable anisotropy. This interaction model is on one hand the basis for many-body quantum simulation of spin systems, and on the other hand the primitive for an expressive quantum gate set. To illustrate the robustness and versatility of our Floquet protocol, we tailor the Heisenberg Hamiltonian and implement two-qubit iSWAP, CZ, and SWAP gates with estimated fidelities of 99.32(3)%, 99.72(2)%, and 98.93(5)%, respectively. In addition, we implement a Heisenberg interaction between higher energy levels and employ it to construct a three-qubit CCZ gate with a fidelity of 96.18(5)%. Importantly, the protocol is applicable to various fixed-frequency high-coherence platforms, thereby unlocking a suite of essential interactions for high-performance quantum information processing. From a broader perspective, our work provides compelling avenues for future exploration of quantum electrodynamics and optimal control using the Floquet framework.
title Programmable Heisenberg interactions between Floquet qubits
topic Quantum Physics
Superconductivity
Applied Physics
url https://arxiv.org/abs/2211.10383