1. Enhancement of Electric Drive in Silicon Quantum Dots with Electric Quadrupole Spin Resonance
- Author
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Mai, Philip Y., Pereira, Pedro H., Alonso, Lucas Andrade, Leon, Ross C. C., Yang, Chih Hwan, Hwang, Jason C. C., Dunmore, Daniel, Lemyre, Julien Camirand, Tanttu, Tuomo, Huang, Wister, Chan, Kok Wai, Tan, Kuan Yen, Cifuentes, Jesús D., Hudson, Fay E., Itoh, Kohei M., Laucht, Arne, Pioro-Ladrière, Michel, Escott, Christopher C., Feng, MengKe, Souza, Reinaldo de Melo e, Dzurak, Andrew, and Saraiva, Andre
- Subjects
Condensed Matter - Mesoscale and Nanoscale Physics - Abstract
Quantum computation with electron spin qubits requires coherent and efficient manipulation of these spins, typically accomplished through the application of alternating magnetic or electric fields for electron spin resonance (ESR). In particular, electrical driving allows us to apply localized fields on the electrons, which benefits scale-up architectures. However, we have found that Electric Dipole Spin Resonance (EDSR) is insufficient for modeling the Rabi behavior in recent experimental studies. Therefore, we propose that the electron spin is being driven by a new method of electric spin qubit control which generalizes the spin dynamics by taking into account a quadrupolar contribution of the quantum dot: electric quadrupole spin resonance (EQSR). In this work, we explore the electric quadrupole driving of a quantum dot in silicon, specifically examining the cases of 5 and 13 electron occupancies., Comment: Main: 5 pages, 4 figures Supp: 4 pages
- Published
- 2025