Chemical control of spin–lattice relaxation to discover a room temperature molecular qubit
Elucidating the role of specific vibrational modes in spin lattice relaxation is a key step to designing room temperature qubits. We executed an experimental and theoretical study on a series of Cu<jats:sup>2+</jats:sup> qubits to increase their operating temperature.
Main Authors: | Amdur, M. Jeremy, Mullin, Kathleen R., Waters, Michael J., Puggioni, Danilo, Wojnar, Michael K., Gu, Mingqiang, Sun, Lei, Oyala, Paul H., Rondinelli, James M., Freedman, Danna E. |
---|---|
Other Authors: | Massachusetts Institute of Technology. Department of Chemistry |
Format: | Article |
Published: |
Royal Society of Chemistry (RSC)
2022
|
Subjects: | |
Online Access: | https://hdl.handle.net/1721.1/146014 |
Similar Items
-
Dipolar spin relaxation of divacancy qubits in silicon carbide
by: Oscar Bulancea-Lindvall, et al.
Published: (2021-12-01) -
Hyperfine-mediated spin relaxation in donor-atom qubits in silicon
by: Yu-Ling Hsueh, et al.
Published: (2023-04-01) -
NUCLEAR-SPIN-LATTICE RELAXATION IN THE SODIUM ANION, NA-
by: Holton, D, et al.
Published: (1986) -
ELECTRON-SPIN-LATTICE AND NUCLEAR-SPIN-LATTICE RELAXATION AND THE METAL-NONMETAL TRANSITION IN LITHIUM-METHYLAMINE SOLUTIONS
by: Edwards, P, et al.
Published: (1979) -
Suppressing relaxation in superconducting qubits by quasiparticle pumping
by: Gustavsson, Simon, et al.
Published: (2021)