Bulletin of the American Physical Society
APS March Meeting 2022
Volume 67, Number 3
Monday–Friday, March 14–18, 2022; Chicago
Session Y36: Novel Spin Qubit Materials and Technologies II
8:00 AM–11:00 AM,
Friday, March 18, 2022
Room: McCormick Place W-194A
Sponsoring
Unit:
DQI
Chair: Daniil Lukin, Stanford
Abstract: Y36.00004 : Qubits made by advanced semiconductor manufacturing
8:36 AM–9:12 AM
Presenter:
Anne-Marije J Zwerver
(Delft University of Technology)
Authors:
Anne-Marije J Zwerver
(Delft University of Technology)
Thomas F Watson
(Components Research, Intel Corporation)
Tobias Krahenmann
(Delft University of Technology)
Lester F Lampert
(Intel Corporation)
Hubert C George
(Intel Corp - Santa Clara)
Ravi Pillarisetty
(Components Research, Intel Corporation)
Stephanie A Bojarski
(Components Research, Intel Corporation)
Payam Amin
(Intel Corp - Santa Clara)
Sergey V Amitonov
(Delft University of Technology)
Jelmer M Boter
(Delft University of Technology)
Juan Pablo Dehollain
(Delft University of Technology)
Eric M Henry
(Components Research, Intel Corporation)
Roza Kotlyar
(Intel Corporation, Hillsboro)
Mario Lodari
(Delft University of Technology)
Florian Luthi
(Intel Corporation, Hillsboro)
Brennen Mueller
(Intel Corporation)
otto k zietz
(Components Research, Intel Corporation)
Jeanette M Roberts
(Intel Corporation - Hillsboro)
Giordano Scappucci
(Delft University of Technology)
Nodar Samkharadze
(Delft University of Technology)
Menno Veldhorst
(Delft University of Technology)
Guoji Zheng
(Intel Corporation)
Lieven Vandersypen
(Delft University of Technology)
Jim S Clarke
(Intel Corporation)
Here, we manufacture quantum dot devices in isotopically enriched 28Si-MOS, fabricated in a standard 300-mm process line. These devices are fully fabricated with optical lithography and chemical-mechanical polishing techniques for patterning, compatible with state-of-the-art industrial fabrication. We demonstrate that this allows for exceptionally high yield and sample uniformity across a 300 mm wafer. Moreover, the samples exhibit well-controlled single and double quantum dot behaviour in the multi-electron regime. We perform charge sensing with a signal-to-noise ratio high enough for single-shot readout and form qubits in the single-electron regime, with spin coherence properties comparable to those reported in the literature. This work highlights the potential for scalability of spin qubits.
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