Electrically Tunable and Dramatically Enhanced Valley-Polarized Emission of Monolayer WS<sub>2</sub> at Room Temperature with Plasmonic Archimedes Spiral Nanostructures.
basic_science · Level V
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- Record sourced from PubMed, PMID 34725874.
- Also identified by DOI 10.1002/adma.202104863.
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Abstract
Monolayer transition metal dichalcogenides (TMDs) have intrinsic valley degrees of freedom, making them appealing for exploiting valleytronic applications in information storage and processing. WS<sub>2</sub> monolayer possesses two inequivalent valleys in the Brillouin zone, each valley coupling selectively with a circular polarization of light. The degree of valley polarization (DVP) under the excitation of circularly polarized light (CPL) is a parameter that determines the purity of valley polarized photoluminescence (PL) of monolayer WS<sub>2</sub> . Here efficient tailoring of valley-polarized PL from monolayer WS<sub>2</sub> at room temperature (RT) through surface plasmon-exciton interactions with plasmonic Archimedes spiral (PAS) nanostructures is reported. The DVP of WS<sub>2</sub> at RT can be enhanced from <5% to 40% and 50% by using 2 turns (2T) and 4 turns (4T) of PAS, respectively. Further enhancement and control of excitonic valley polarization is demonstrated by electrostatically doping monolayer WS<sub>2</sub> . For CPL on WS<sub>2</sub> -2TPAS heterostructures, the 40% valley polarization is enhanced to 70% by modulating the carrier doping via a backgate, which may be attributed to the screening of momentum-dependent long-range electron-hole exchange interactions. The manifestation of electrically tunable valley-polarized emission from WS<sub>2</sub> -PAS heterostructures presents a new strategy toward harnessing valley excitons for application in ultrathin valleytronic devices.