A four-qubit germanium quantum processor.


Journal

Nature
ISSN: 1476-4687
Titre abrégé: Nature
Pays: England
ID NLM: 0410462

Informations de publication

Date de publication:
03 2021
Historique:
received: 23 09 2020
accepted: 04 02 2021
entrez: 25 3 2021
pubmed: 26 3 2021
medline: 26 3 2021
Statut: ppublish

Résumé

The prospect of building quantum circuits

Identifiants

pubmed: 33762771
doi: 10.1038/s41586-021-03332-6
pii: 10.1038/s41586-021-03332-6
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

580-585

Références

Terhal, B. M. Quantum error correction for quantum memories. Rev. Mod. Phys. 87, 307–346 (2015).
doi: 10.1103/RevModPhys.87.307
Reiher, M., Wiebe, N., Svore, K. M., Wecker, D. & Troyer, M. Elucidating reaction mechanisms on quantum computers. Proc. Natl Acad. Sci. USA 114, 7555–7560 (2017).
pubmed: 28674011 pmcid: 5530650 doi: 10.1073/pnas.1619152114
Loss, D. & DiVincenzo, D. P. Quantum computation with quantum dots. Phys. Rev. A 57, 120–126 (1998).
doi: 10.1103/PhysRevA.57.120
Vandersypen, L. M. K. et al. Interfacing spin qubits in quantum dots and donors—hot, dense, and coherent. npj Quant. Inform. 3, 34 (2017).
doi: 10.1038/s41534-017-0038-y
Shulman, M. D. et al. Demonstration of entanglement of electrostatically coupled singlet-triplet qubits. Science 336, 202–205 (2012).
pubmed: 22499942 doi: 10.1126/science.1217692
Veldhorst, M. et al. A two-qubit logic gate in silicon. Nature 526, 410–414 (2015).
pubmed: 26436453 doi: 10.1038/nature15263
Zajac, D. M. et al. Resonantly driven CNOT gate for electron spins. Science 359, 439–442 (2018).
pubmed: 29217586 doi: 10.1126/science.aao5965
Watson, T. F. et al. A programmable two-qubit quantum processor in silicon. Nature 555, 633–637 (2018).
pubmed: 29443962 doi: 10.1038/nature25766
Huang, W. et al. Fidelity benchmarks for two-qubit gates in silicon. Nature 569, 532–536 (2019).
pubmed: 31086337 doi: 10.1038/s41586-019-1197-0
He, Y. et al. A two-qubit gate between phosphorus donor electrons in silicon. Nature 571, 371–375 (2019).
pubmed: 31316197 doi: 10.1038/s41586-019-1381-2
Ma¸dzik, M. T. et al. Conditional quantum operation of two exchange-coupled single-donor spin qubits in a MOS-compatible silicon device. Nat. Commun. 12, 181 (2021).
pmcid: 7794236 doi: 10.1038/s41467-020-20424-5
Petit, L. et al. Universal quantum logic in hot silicon qubits. Nature 580, 355–359 (2020).
pubmed: 32296188 doi: 10.1038/s41586-020-2170-7
Hendrickx, N. W., Franke, D. P., Sammak, A., Scappucci, G. & Veldhorst, M. Fast two-qubit logic with holes in germanium. Nature 577, 487–491 (2020).
pubmed: 31932731 doi: 10.1038/s41586-019-1919-3
Arute, F. et al. Quantum supremacy using a programmable superconducting processor. Nature 574, 505–510 (2019).
pubmed: 31645734 doi: 10.1038/s41586-019-1666-5
Koppens, F. H. L. et al. Driven coherent oscillations of a single electron spin in a quantum dot. Nature 442, 766–771 (2006).
pubmed: 16915280 doi: 10.1038/nature05065
Petta, J. R. et al. Coherent manipulation of coupled electron spins in semiconductor quantum dots. Science 309, 2180–2184 (2005).
pubmed: 16141370 doi: 10.1126/science.1116955
Itoh, K. M. & Watanabe, H. Isotope engineering of silicon and diamond for quantum computing and sensing applications. MRS Commun. 4, 143–157 (2014).
doi: 10.1557/mrc.2014.32
Muhonen, J. T. et al. Storing quantum information for 30 seconds in a nanoelectronic device. Nat. Nanotechnol. 9, 986–991 (2014).
pubmed: 25305745 doi: 10.1038/nnano.2014.211
Veldhorst, M. et al. An addressable quantum dot qubit with fault-tolerant control-fidelity. Nat. Nanotechnol. 9, 981–985 (2014).
pubmed: 25305743 doi: 10.1038/nnano.2014.216
Yoneda, J. et al. A quantum-dot spin qubit with coherence limited by charge noise and fidelity higher than 99.9%. Nat. Nanotechnol. 13, 102–106 (2018).
pubmed: 29255292 doi: 10.1038/s41565-017-0014-x
Yang, C. H. et al. Silicon qubit fidelities approaching incoherent noise limits via pulse engineering. Nat. Electron. 2, 151–158 (2019).
doi: 10.1038/s41928-019-0234-1
Zwanenburg, F. A. et al. Silicon quantum electronics. Rev. Mod. Phys. 85, 961–1019 (2013).
doi: 10.1103/RevModPhys.85.961
Scappucci, G. et al. The germanium quantum information route. Nat. Rev. Mater. https://doi.org/10.1038/s41578-020-00262-z (2020).
Itoh, K. et al. High purity isotopically enriched 70-Ge and 74-Ge single crystals: isotope separation, growth, and properties. J. Mater. Res. 8, 1341–1347 (1993).
doi: 10.1557/JMR.1993.1341
Bulaev, D. V. & Loss, D. Spin relaxation and decoherence of holes in quantum dots. Phys. Rev. Lett. 95, 076805 (2005).
pubmed: 16196813 doi: 10.1103/PhysRevLett.95.076805
Lodari, M. et al. Light effective hole mass in undoped Ge/SiGe quantum wells. Phys. Rev. B 100, 041304 (2019).
doi: 10.1103/PhysRevB.100.041304
Lodari, M. et al. Low percolation density and charge noise with holes in germanium. Mater. Quantum. Technol. 1, 011002 (2020).
doi: 10.1088/2633-4356/abcd82
Hendrickx, N. W. et al. Gate-controlled quantum dots and superconductivity in planar germanium. Nat. Commun. 9, 2835 (2018).
pubmed: 30026466 pmcid: 6053419 doi: 10.1038/s41467-018-05299-x
Lawrie, W. I. L. et al. Quantum dot arrays in silicon and germanium. Appl. Phys. Lett. 116, 080501 (2020).
doi: 10.1063/5.0002013
Pillarisetty, R. Academic and industry research progress in germanium nanodevices. Nature 479, 324–328 (2011).
pubmed: 22094692 doi: 10.1038/nature10678
Bulaev, D. V. & Loss, D. Electric dipole spin resonance for heavy holes in quantum dots. Phys. Rev. Lett. 98, 097202 (2007).
pubmed: 17359191 doi: 10.1103/PhysRevLett.98.097202
Maurand, R. et al. A CMOS silicon spin qubit. Nat. Commun. 7, 13575 (2016).
pubmed: 27882926 pmcid: 5123048 doi: 10.1038/ncomms13575
Watzinger, H. et al. A germanium hole spin qubit. Nat. Commun. 9, 3902 (2018).
pubmed: 30254225 pmcid: 6156604 doi: 10.1038/s41467-018-06418-4
Pioro-Ladrière, M. et al. Electrically driven single-electron spin resonance in a slanting Zeeman field. Nat. Phys. 4, 776–779 (2008).
doi: 10.1038/nphys1053
Tokura, Y., van der Wiel, W. G., Obata, T. & Tarucha, S. Coherent single electron spin control in a slanting Zeeman field. Phys. Rev. Lett. 96, 047202 (2006).
pubmed: 16486882 doi: 10.1103/PhysRevLett.96.047202
Sammak, A. et al. Shallow and undoped germanium quantum wells: a playground for spin and hybrid quantum technology. Adv. Funct. Mater. 29, 1807613 (2019).
doi: 10.1002/adfm.201807613
van Riggelen, F. et al. A two-dimensional array of single-hole quantum dots. Appl. Phys. Lett. 118, 044002 (2021).
doi: 10.1063/5.0037330
Hendrickx, N. W. et al. A single-hole spin qubit. Nat. Commun. 11, 3478 (2020).
pubmed: 32651363 pmcid: 7351715 doi: 10.1038/s41467-020-17211-7
Lawrie, W. I. L. et al. Spin relaxation benchmarks and individual qubit addressability for holes in quantum dots. Nano Lett. 20, 7237–7242 (2020).
pubmed: 32833455 pmcid: 7564448 doi: 10.1021/acs.nanolett.0c02589
Danon, J. & Nazarov, Y. V. Pauli spin blockade in the presence of strong spin–orbit coupling. Phys. Rev. B 80, 041301 (2009).
doi: 10.1103/PhysRevB.80.041301
Yang, C. H. et al. Charge state hysteresis in semiconductor quantum dots. Appl. Phys. Lett. 105, 183505 (2014).
doi: 10.1063/1.4901218
Harvey-Collard, P. et al. High-fidelity single-shot readout for a spin qubit via an enhanced latching mechanism. Phys. Rev. X 8, 021046 (2018).
Knill, E. et al. Randomized benchmarking of quantum gates. Phys. Rev. A 77, 012307 (2008).
doi: 10.1103/PhysRevA.77.012307
Gullans, M. J. & Petta, J. R. Protocol for a resonantly driven three-qubit Toffoli gate with silicon spin qubits. Phys. Rev. B 100, 085419 (2019).
doi: 10.1103/PhysRevB.100.085419
Hetényi, B., Kloeffel, C. & Loss, D. Exchange interaction of hole-spin qubits in double quantum dots in highly anisotropic semiconductors. Phys. Rev. Res. 2, 033036 (2020).
doi: 10.1103/PhysRevResearch.2.033036
Taylor, J. M. et al. Fault-tolerant architecture for quantum computation using electrically controlled semiconductor spins. Nat. Phys. 1, 177–183 (2005).
doi: 10.1038/nphys174
Veldhorst, M., Eenink, H. G. J., Yang, C. H. & Dzurak, A. S. Silicon CMOS architecture for a spin-based quantum computer. Nat. Commun. 8, 1766 (2017).
pubmed: 29242497 pmcid: 5730618 doi: 10.1038/s41467-017-01905-6
Li, R. et al. A crossbar network for silicon quantum dot qubits. Sci. Adv. 4, eaar3960 (2018).
pubmed: 29984303 pmcid: 6035036 doi: 10.1126/sciadv.aar3960
Hensgens, T. et al. Quantum simulation of a Fermi–Hubbard model using a semiconductor quantum dot array. Nature 548, 70–73 (2017).
pubmed: 28770852 doi: 10.1038/nature23022
Seedhouse, A. E. et al. Pauli blockade in silicon quantum dots with spin-orbit control. PRX Quant. 2, 010303 (2021).
doi: 10.1103/PRXQuantum.2.010303
Russ, M. et al. High-fidelity quantum gates in Si/SiGe double quantum dots. Phys. Rev. B 97, 085421 (2018).
doi: 10.1103/PhysRevB.97.085421
Chan, K. W. et al. Assessment of a silicon quantum dot spin qubit environment via noise spectroscopy. Phys. Rev. Appl. 10, 044017 (2018).
doi: 10.1103/PhysRevApplied.10.044017
Wang, Z. et al. Suppressing charge-noise sensitivity in high-speed Ge hole spin-orbit qubits. Preprint at https://arxiv.org/abs/1911.11143 (2019).
Barnes, E., Kestner, J. P., Nguyen, N. T. T. & Das Sarma, S. Screening of charged impurities with multielectron singlet-triplet spin qubits in quantum dots. Phys. Rev. B 84, 235309 (2011).
doi: 10.1103/PhysRevB.84.235309

Auteurs

Nico W Hendrickx (NW)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands. n.w.hendrickx@tudelft.nl.

William I L Lawrie (WIL)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands.

Maximilian Russ (M)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands.

Floor van Riggelen (F)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands.

Sander L de Snoo (SL)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands.

Raymond N Schouten (RN)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands.

Amir Sammak (A)

QuTech and Netherlands Organisation for Applied Scientific Research (TNO), Delft, The Netherlands.

Giordano Scappucci (G)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands.

Menno Veldhorst (M)

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, The Netherlands. m.veldhorst@tudelft.nl.

Classifications MeSH