Comparative Study of Quantum Emitter Fabrication in Wide Bandgap Materials Using Localized Electron Irradiation

dc.contributor.authorKumar A.
dc.contributor.authorCholsuk C.
dc.contributor.authorMishuk M.N.
dc.contributor.authorHazra M.
dc.contributor.authorPillot C.
dc.contributor.authorMatthes T.
dc.contributor.authorShaik T.A.
dc.contributor.authorÇakan A.
dc.contributor.authorDeckert V.
dc.contributor.authorSuwanna S.
dc.contributor.authorVogl T.
dc.contributor.correspondenceKumar A.
dc.contributor.otherMahidol University
dc.date.accessioned2024-03-07T18:35:47Z
dc.date.available2024-03-07T18:35:47Z
dc.date.issued2024-02-23
dc.description.abstractQuantum light sources are crucial foundational components for various quantum technology applications. With the rapid development of quantum technology, there has been a growing demand for materials with the capability of hosting quantum emitters. One such material platform uses fluorescent defects in hexagonal boron nitride (hBN) that can host deep sublevels within the bandgap. The localized electron irradiation has shown its effectiveness in generating deep sublevels to induce single emitters in hBN. The question is whether localized (electron beam) irradiation is a reliable tool for creating emitters in other wide bandgap materials and its uniqueness to hBN. Here, we investigate and compare the fabrication of quantum emitters in hBN and exfoliated muscovite mica flakes along with other 3D crystals, such as silicon carbide and gallium nitride, which are known to host quantum emitters. We used our primary fabrication technique of localized electron irradiation using a standard scanning electron microscope. To complement our experimental work, we employed density functional theory simulations to study the atomic structures of defects in mica. While our fabrication technique allows one to create hBN quantum emitters with a high yield and high single photon purity, it is unable to fabricate single emitters in the other solid-state crystals under investigation. This allows us to draw conclusions on the emitter fabrication mechanism in hBN, which could rely on activating pre-existing defects by charge state manipulation. Therefore, we provide an essential step toward the identification of hBN emitters and their formation process.
dc.identifier.citationACS Applied Optical Materials Vol.2 No.2 (2024) , 323-332
dc.identifier.doi10.1021/acsaom.3c00441
dc.identifier.eissn27719855
dc.identifier.scopus2-s2.0-85186170922
dc.identifier.urihttps://repository.li.mahidol.ac.th/handle/20.500.14594/97496
dc.rights.holderSCOPUS
dc.subjectMaterials Science
dc.subjectChemistry
dc.subjectPhysics and Astronomy
dc.titleComparative Study of Quantum Emitter Fabrication in Wide Bandgap Materials Using Localized Electron Irradiation
dc.typeArticle
mu.datasource.scopushttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85186170922&origin=inward
oaire.citation.endPage332
oaire.citation.issue2
oaire.citation.startPage323
oaire.citation.titleACS Applied Optical Materials
oaire.citation.volume2
oairecerif.author.affiliationInstitut für Photonische Technologien
oairecerif.author.affiliationFriedrich-Schiller-Universität Jena
oairecerif.author.affiliationTechnische Universität München
oairecerif.author.affiliationMahidol University

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