Abstract Two‐dimensional (2D) transition metal dichalcogenides (TMDs) such as tungsten diselenide (WSe 2 ) are attractive nanomaterials for quantum information applications due to single‐photon emission (SPE) from intrinsic atomic defects. Defect and strain engineering techniques have been developed to produce high purity, deterministically placed SPE in WSe 2 . However, a major challenge in the application of these techniques is the low temperature required to observe defect‐bound TMD exciton emission, typically limiting SPE to T 90%) SPE in strained WSe 2 persisting to over T = 90 K. Covalent diazonium functionalization of graphite in layered WSe 2 /graphite heterostructures maintains high purity up to T = 90 K and single‐photon source integrity up to T = 115 K. This method preserves the best qualities of SPE from WSe 2 while increasing working temperature to more than three times the typical range. This work demonstrates the versatility of surface functionalization and heterostructure design to synergistically improve the properties of quantum emission and offers new insights into the phenomenon of SPE from 2D materials.
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S. Carin Gavin
Northwestern University
Hsun‐Jen Chuang
United States Naval Research Laboratory
Anushka Dasgupta
Northwestern University
Advanced Science
Northwestern University
United States Naval Research Laboratory
Stevens Institute of Technology
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Gavin et al. (Tue,) studied this question.
synapsesocial.com/papers/68e79cf2ed88661f66c2e0a4 — DOI: https://doi.org/10.1002/advs.202511319