Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/111203
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dc.contributorDepartment of Applied Physics-
dc.creatorOnofrio, Nen_US
dc.creatorGuzman, Den_US
dc.creatorStrachan, Aen_US
dc.date.accessioned2025-02-17T01:37:57Z-
dc.date.available2025-02-17T01:37:57Z-
dc.identifier.issn0021-8979en_US
dc.identifier.urihttp://hdl.handle.net/10397/111203-
dc.language.isoenen_US
dc.publisherAIP Publishing LLCen_US
dc.rights© 2017 Author(s).en_US
dc.rightsThis article may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. This article appeared in Onofrio, N., Guzman, D., & Strachan, A. (2017). Novel doping alternatives for single-layer transition metal dichalcogenides. Journal of Applied Physics, 122(18) and may be found at https://doi.org/10.1063/1.4994997.en_US
dc.titleNovel doping alternatives for single-layer transition metal dichalcogenidesen_US
dc.typeJournal/Magazine Articleen_US
dc.identifier.spage185102-1en_US
dc.identifier.epage185102-12en_US
dc.identifier.volume122en_US
dc.identifier.issue18en_US
dc.identifier.doi10.1063/1.4994997en_US
dcterms.abstractSuccessful doping of single-layer transition metal dichalcogenides (TMDs) remains a formidable barrier to their incorporation into a range of technologies. We use density functional theory to study doping of molybdenum and tungsten dichalcogenides with a large fraction of the periodic table. An automated analysis of the energetics, atomic and electronic structure of thousands of calculations results in insightful trends across the periodic table and points out promising dopants to be pursued experimentally. Beyond previously studied cases, our predictions suggest promising substitutional dopants that result in p-type transport and reveal interesting physics behind the substitution of the metal site. Doping with early transition metals (TMs) leads to tensile strain and a significant reduction in the bandgap. The bandgap increases and strain is reduced as the d-states are filled into the mid TMs; these trends reverse as we move into the late TMs. Additionally, the Fermi energy increases monotonously as the d-shell is filled from the early to mid TMs and we observe few to no gap states, indicating the possibility of both p- (early TMs) and n- (mid TMs) type doping. Quite surprisingly, the simulations indicate the possibility of interstitial doping of TMDs; the energetics reveal that a significant number of dopants, increasing in number from molybdenum disulfide to diselenide and to ditelluride, favor the interstitial sites over adsorbed ones. Furthermore, calculations of the activation energy associated with capturing the dopants into the interstitial site indicate that the process is kinetically possible. This suggests that interstitial impurities in TMDs are more common than thought to date and we propose a series of potential interstitial dopants for TMDs relevant for application in nanoelectronics based on a detailed analysis of the predicted electronic structures.-
dcterms.accessRightsopen accessen_US
dcterms.bibliographicCitationJournal of applied physics, 14 Nov. 2017, v. 122, no. 18, 185102, p. 185102-1 - 185102-12en_US
dcterms.isPartOfJournal of applied physicsen_US
dcterms.issued2017-11-14-
dc.identifier.scopus2-s2.0-85033586919-
dc.identifier.eissn1089-7550en_US
dc.identifier.artn185102en_US
dc.description.validate202502 bcch-
dc.description.oaVersion of Recorden_US
dc.identifier.FolderNumberOA_Others-
dc.description.fundingSourceOthersen_US
dc.description.fundingTextFAME; LEAST Centers; Defense Advanced Research Projects Agency, DARPA; Microelectronics Advanced Research Corporation, MARCOen_US
dc.description.pubStatusPublisheden_US
dc.description.oaCategoryVoR alloweden_US
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