A strongly coupled two-qubit system with weak quantum crosstalk
ORAL
Abstract
In microwave-activated two-qubit gate schemes, a strong static exchange interaction between superconducting qubits leads to a strong hybridization between their eigenstates and thus enables fast operations. However, a larger exchange-interaction strength generally increases spurious quantum (ZZ) crosstalk, diminishing addressability for single-qubit gates. In this talk, we discuss the design of a system of transmons with multiple coupling paths between qubits, which provides a high entangling-gate rate with reduced static quantum crosstalk. We optimize the layout configuration of such a system by means of a finite-element analysis combined with the energy-participation-ratio technique [1]. This approach allows us to find the quantum Hamiltonian for a given physical layout and therefore accurately estimate the ZZ coupling magnitude as well as the rates of two-qubit gates.
[1] Z. Minev, et.al., npj Quantum Inf. 7, 131 (2021)
[1] Z. Minev, et.al., npj Quantum Inf. 7, 131 (2021)
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Presenters
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Konstantin Nesterov
Bleximo Corp.
Authors
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Konstantin Nesterov
Bleximo Corp.
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Denis Chevallier
Bleximo Corp.
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Chiara Pelletti
Bleximo Corp.
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Larry Chen
University of California, Berkeley
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Bingcheng Qing
University of California, Berkeley
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Ravi K Naik
Lawrence Berkeley National Laboratory
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David I Santiago
Lawrence Berkeley National Laboratory
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Irfan Siddiqi
University of California, Berkeley, Lawrence Berkeley National Laboratory
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Alexei Marchenkov
Bleximo Corp.