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Electromechanical quantum simulators

delete2018-06-11
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F
Francesco Tacchino
A
Alessandro Chiesa
M
Matthew LaHaye
S
Stefano Carretta *
D
Dario Gerace
DOI:10.1103/PhysRevB.97.214302delete
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Abstract

Abstract

En 中文
Digital quantum simulators are among the most appealing applications of a quantum computer. Here we propose a universal, scalable, and integrated quantum computing platform based on tunable nonlinear electromechanical nano-oscillators. It is shown that very high operational fidelities for single- and two-qubits gates can be achieved in a minimal architecture, where qubits are encoded in the anharmonic vibrational modes of mechanical nanoresonators, whose effective coupling is mediated by virtual fluctuations of an intermediate superconducting artificial atom. An effective scheme to induce large single-phonon nonlinearities in nanoelectromechamcal devices is explicitly discussed, thus opening the route to experimental investigation in this direction. Finally, we explicitly show the very high fidelities that can be reached for the digital quantum simulation of model Hamiltonians, by using realistic experimental parameters in state-of-the-art devices, and considering the transverse field Ising model as a paradigmatic example.
Keywords:
SUPERCONDUCTING CIRCUITS
MECHANICAL RESONATOR
DYNAMIC-RANGE
GROUND-STATE
SYSTEMS
ARCHITECTURE
MOTION
QUBITS
CAVITY
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Journal

Physical Review B cover
Physical Review B
IF:
3.7
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15.4W
Citations:
41.0W

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research center julich
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university of pavia
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University of Parma
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