TY - JOUR
T1 - Nonlocal Spin Dynamics in the Crossover from Diffusive to Ballistic Transport
AU - Roche, Stephan
AU - Vila Tusell, Marc
AU - Garcia, José H.
AU - Cummings, Aron
AU - Groth, Christoph W.
AU - Waintal, Xavier
PY - 2020
Y1 - 2020
N2 - Improved fabrication techniques have enabled the possibility of ballistic transport and unprecedented spin manipulation in ultraclean graphene devices. Spin transport in graphene is typically probed in a nonlocal spin valve and is analyzed using spin diffusion theory, but this theory is not necessarily applicable when charge transport becomes ballistic or when the spin diffusion length is exceptionally long. Here, we study these regimes by performing quantum simulations of graphene nonlocal spin valves. We find that conventional spin diffusion theory fails to capture the crossover to the ballistic regime as well as the limit of long spin diffusion length. We show that the latter can be described by an extension of the current theoretical framework. Finally, by covering the whole range of spin dynamics, our study opens a new perspective to predict and scrutinize spin transport in graphene and other two-dimensional material-based ultraclean devices.
AB - Improved fabrication techniques have enabled the possibility of ballistic transport and unprecedented spin manipulation in ultraclean graphene devices. Spin transport in graphene is typically probed in a nonlocal spin valve and is analyzed using spin diffusion theory, but this theory is not necessarily applicable when charge transport becomes ballistic or when the spin diffusion length is exceptionally long. Here, we study these regimes by performing quantum simulations of graphene nonlocal spin valves. We find that conventional spin diffusion theory fails to capture the crossover to the ballistic regime as well as the limit of long spin diffusion length. We show that the latter can be described by an extension of the current theoretical framework. Finally, by covering the whole range of spin dynamics, our study opens a new perspective to predict and scrutinize spin transport in graphene and other two-dimensional material-based ultraclean devices.
KW - Ballistic transports
KW - Fabrication technique
KW - Nonlocal spin valves
KW - Quantum simulations
KW - Spin manipulation
KW - Spin-diffusion length
KW - Theoretical framework
KW - Two-dimensional materials
UR - https://www.scopus.com/pages/publications/85085660009
U2 - 10.1103/PhysRevLett.124.196602
DO - 10.1103/PhysRevLett.124.196602
M3 - Article
SN - 0031-9007
VL - 124
JO - Physical Review Letters
JF - Physical Review Letters
IS - 19
ER -