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Fundamental limits of superconducting quantum computers

2022/01/13 by Michele Vischi, Vischi, Michele, Luca Ferialdi +5 · 1 citation
Physics and Astronomy · Computer Science · #Quantum and electron transport phenomena #Quantum Information and Cryptography #Quantum Computing Algorithms and Architecture

paper · pdf · doi:10.48550/arxiv.2201.05114

Abstract

The Continuous Spontaneous Localization (CSL) model is an alternative formulation of quantum mechanics which introduces a noise coupled non linearly to the wave function to account for its collapse. We consider CSL effects on quantum computers made of superconducting transmon qubits. As a direct effect CSL reduces quantum superpositions of the computational basis states of the qubits: we show the reduction rate to be negligibly small. However, an indirect effect of CSL, dissipation induced by the noise, also leads transmon qubits to decohere, by generating additional quasiparticles. Since the decoherence rate of transmon qubits depends on the quasiparticle density, by computing their generation rate induced by CSL, we can estimate the corresponding quasiparticle density and thus the limit set by CSL on the performances of transmon quantum computers. We show that CSL could spoil the quantum computation of practical algorithms on large devices. We further explore the possibility of testing CSL effects on superconducting devices.

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