A roadmap for the design of four-terminal spin valves and the extraction of spin diffusion length
arXiv:2010.00669 · doi:10.1103/PhysRevApplied.15.034058
Abstract
Graphene is a promising substrate for future spintronics devices owing to its remarkable electronic mobility and low spin-orbit coupling. Hanle precession in spin valve devices is commonly used to evaluate the spin diffusion and spin lifetime properties. In this work, we demonstrate that this method is no longer accurate when the distance between inner and outer electrodes is smaller than six times the spin diffusion length, leading to errors as large as 50% for the calculations of the spin figures of merit of graphene. We suggest simple but efficient approaches to circumvent this limitation by addressing a revised version of the Hanle fit function. Complementarily, we provide clear guidelines for the design of four-terminal spin valves able to yield flawless estimations of the spin lifetime and the spin diffusion coefficient.
7 pages, 5 figures
References in corpus (19)
- Graphene Spintronics
- Electrical Detection of Spin Transport in Lateral Ferromagnet-Semiconductor Devices
- Colloquium: Spintronics in graphene and other two-dimensional materials
- Tunneling Spin Injection into Single Layer Graphene
- Tunneling Spin Injection into Single Layer Graphene (Supplementary Information)
- Controlling spin relaxation in hexagonal BN-encapsulated graphene with a transverse electric field
- Electronic spin drift in graphene field effect transistors
- Spin transport in high quality suspended graphene devices
- Contact induced spin relaxation in Hanle spin precession measurements
- Giant spin accumulation in silicon nonlocal spin-transport devices
- Revisiting the measurement of the spin relaxation time in graphene-based devices
- Spin communication over 30 m long channels of chemical vapor deposited graphene on SiO
- Effect of contacts on spin lifetime measurements in graphene
- Contact-induced charge contributions to non-local spin transport measurements in Co/MgO/graphene devices
- Nonlocal Spin Dynamics in the Crossover from Diffusive to Ballistic Transport
- Enhanced spin accumulation at room temperature in graphene spin valves with amorphous carbon interfacial layers
- Spin transport in graphene nanostructures
- Transition between 1D and 0D spin transport studied by Hanle precession
- On the origin of the giant spin detection efficiency in tunnel barrier based electrical spin detector