Gate Control of Spin-Layer-Locking FETs and Application to Monolayer LuIO.
basic_science · Level V
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- Record sourced from PubMed, PMID 34460271.
- Also identified by DOI 10.1021/acs.nanolett.1c02322.
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Abstract
A recent 2D spinFET concept proposes to switch electrostatically between two separate sublayers with strong and opposite intrinsic Rashba effects, exploiting the spin-layer-locking mechanism in centrosymmetric materials with local dipole fields. Here, we propose a novel monolayer material within this family, lutetium oxide iodide (LuIO). It displays one of the largest Rashba effects among 2D materials (up to <i>k</i><sub>R</sub> = 0.08 Å<sup>-1</sup>), leading to a π/2 rotation of the spins over just 1 nm. The monolayer was predicted to be exfoliable from its experimentally known 3D bulk counterpart, with a binding energy lower than graphene. We characterize and simulate the interplay of the two gate-controlled parameters for such devices: doping and spin channel selection. We show that the ability to split the spin channels in energy diminishes with doping, leading to specific gate-operation guidelines that can apply to all devices based on spin-layer locking.
Medical subject headings
- Graphite
- Oxides