DOE OSTI · 3363171
Computational analysis of interface-driven spin-orbit coupling in molecular adsorbates on transition metal dichalcogenides
Abstract
Spin-orbit coupling (SOC) lifts molecular orbital degeneracy, enabling bilevel electronic platforms suitable for next-generation digital devices. However, common light-atom molecular feedstocks exhibit weak SOC due to the absence of heavy elements. To enhance SOC without synthesizing new materials, we leverage interfacial interactions between molecules and transition-element-based solid-state materials. This computational study investigates SOC splitting in metal-phthalocyanine adsorbed on transition metal dichalcogenides (TMDs) using density functional theory (DFT). The enhanced SOC splitting is attributed to strong orbital hybridization at the molecule-substrate interface. Specifically, Zn-phthalocyanine (ZnPC) on monolayer MoS 2 achieves a notable SOC splitting of ∼8 meV. Furthermore, when ZnPC forms self-assembled chains on MoS 2 , the splitting increases to ∼20 meV, driven by the formation of hybrid bands modulated by molecular periodicity. Furthermore, these findings highlight the role of interfacial and intermolecular interactions in inducing and enhancing SOC in surface-adsorbed molecules, providing a new strategy for molecular spintronic materials without complex synthetic efforts.
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Wang, Zihao [University of California, San Diego, La Jolla, CA (United States)], Li, Wan-Lu [University of California, San Diego, La Jolla, CA (United States)], Li, Shaowei [University of California, San Diego, La Jolla, CA (United States)] (ORCID:000000024627626X). 2025-10-30. Computational analysis of interface-driven spin-orbit coupling in molecular adsorbates on transition metal dichalcogenides. https://doi.org/10.1103/zsmc-pd17
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