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Full-scale quantum computers require the integration of millions of quantum bits.
Simulating physics with computers
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A 22nm high performance and low-power CMOS technology featuring fully-depleted tri-gate transistors, self-aligned contacts and high density MIM capacitors
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Silicon quantum electronics
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Spin-orbit interactions for singlet-triplet qubits in silicon
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Benchmarking gate fidelities in a Si/SiGe two-qubit device
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Quantifying error and leakage in an encoded Si/SiGe triple-dot qubit
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1/f noise: implications for solid-state quantum information
Paladino, E., Galperin, Y., Falci, G. & Altshuler, B · 2014
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A two-qubit logic gate in silicon
Veldhorst, M. et al · 2015
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A CMOS silicon spin qubit
Maurand, R. et al · 2016
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Roads towards fault-tolerant universal quantum computation
Campbell, E. T., Terhal, B. M. & Vuillot, C · 2017
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Interfacing spin qubits in quantum dots and donors—hot, dense, and coherent
Vandersypen, L. M. K. et al · 2017
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Silicon CMOS architecture for a spin-based quantum computer
Veldhorst, M., Eenink, H. G. J., Yang, C. H. & Dzurak, A. S · 2017
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Fidelity benchmarks for two-qubit gates in silicon
Huang, W. et al · 2019
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A cryogenic interface for controlling many qubits
Pauka, S. J. et al · 2019
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Quantum transport properties of industrial 28
Sabbagh, D. et al · 2019
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Operation of a silicon quantum processor unit cell above one kelvin
Yang, C. H. et al · 2020
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A flexible 300 mm integrated Si MOS platform for electron- and hole-spin qubits exploration
Li, R. et al · 2020
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Fast two-qubit logic with holes in germanium
Hendrickx, N., Franke, D., Sammak, A., Scappucci, G. & Veldhorst, M · 2020
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Conditional teleportation of quantum-dot spin states
Qiao, H. et al · 2020
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A four-qubit germanium quantum processor
Hendrickx, N. W. et al · 2020
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Universal quantum logic in hot silicon qubits
Petit, L. et al · 2020
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CMOS-based cryogenic control of silicon quantum circuits
Xue, X. et al · 2020
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Charge detection in an array of CMOS quantum dots
Chanrion, E. et al · 2020
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