2018Unpublished venueOpen access

Towards scalable silicon quantum computing

M. Vinet, Louis Hutin, Benoît Bertrand, Sylvain Barraud, Jean‐Michel Hartmann, Y.-J. Kim, V. Mazzocchi, A. Amisse, Heorhii Bohuslavskyi, L. Bourdet, Alessandro Crippa, X. Jehl, R. Maurand, Yann‐Michel Niquet, M. Sanquer, Benjamin Venitucci, Baptiste Jadot, Emmanuel Chanrion, Pierre-André Mortemousque, Cameron Spence, Matias Urdampilleta, Silvano De Franceschi, Tristan Meunier

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Abstract

We report the efforts and challenges dedicated towards building a scalable quantum computer based on Si spin qubits. We review the advantages of relying on devices fabricated in a thin film technology as their properties can be in situ tuned by the back gate voltage, which prefigures tuning capabilities in scalable qubits architectures.

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What this paper is about

We report the efforts and challenges dedicated towards building a scalable quantum computer based on Si spin qubits. We review the advantages of relying on devices fabricated in a thin film technology as their properties can be in situ tuned by the back gate voltage, which prefigures tuning capabilities in scalable qubits architectures.

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Available abstract

We report the efforts and challenges dedicated towards building a scalable quantum computer based on Si spin qubits. We review the advantages of relying on devices fabricated in a thin film technology as their properties can be in situ tuned by the back gate voltage, which prefigures tuning capabilities in scalable qubits architectures.

Key concepts: Scalability, Qubit, Quantum computer, Computer science, Silicon, Optoelectronics, Nanotechnology, Materials science

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