arXiv · 2206.03117
Proposal for all-electrical spin manipulation and detection for a single molecule on boron-substituted graphene
Abstract
All-electrical writing and reading of spin states attract considerable attention for their promising applications in energy-efficient spintronics devices. Here we show, based on rigorous first-principles calculations, that the spin properties can be manipulated and detected in molecular spinterfaces, where an iron tetraphenyl porphyrin (FeTPP) molecule is deposited on boron-substituted graphene (B-G). Notably, a reversible spin switching between the $S=1$ and $S=3/2$ states is achieved by a gate electrode. We can trace the origin to a strong hybridization between the Fe-$d_{{z}^2}$ and B-$p_z$ orbitals. Combining density functional theory with nonequilibrium Green's function formalism, we propose an experimentally feasible 3-terminal setup to probe the spin state. Furthermore, we show how the in-plane quantum transport for the B-G, which is non-spin polarized, can be modified by FeTPP, yielding a significant transport spin polarization near the Fermi energy ($>10\%$ for typical coverage). Our work paves the way to realize all-electrical spintronics devices using molecular spinterfaces.
Explore related subjects
Keep this discovery
Fei Gao, Dongzhe Li, Cyrille Barreteau, Mads Brandbyge. 2022-06-07. Proposal for all-electrical spin manipulation and detection for a single molecule on boron-substituted graphene. https://doi.org/10.1103/physrevlett.129.027201
Cite the original work for its findings. Save a collection to share your selection of sources.