Direct Observation of Circularly Polarized Nonlinear Optical Activities in Chiral Hybrid Lead Halides

dc.contributor.authorLiu, Sunhaoen
dc.contributor.authorWang, Xiaomingen
dc.contributor.authorDou, Yixuanen
dc.contributor.authorWang, Qianen
dc.contributor.authorKim, Jiyoonen
dc.contributor.authorSlebodnick, Carlaen
dc.contributor.authorYan, Yanfaen
dc.contributor.authorQuan, Linaen
dc.date.accessioned2025-02-17T17:39:55Zen
dc.date.available2025-02-17T17:39:55Zen
dc.date.issued2024-04-03en
dc.description.abstractCircularly polarized light emission is a crucial application in imaging, sensing, and photonics. However, utilizing low-energy photons to excite materials, as opposed to high-energy light excitation, can facilitate deep-tissue imaging and sensing applications. The challenge lies in finding materials capable of directly generating circularly polarized nonlinear optical effects. In this study, we introduce a chiral hybrid lead halide (CHLH) material system, R/S-DPEDPb3Br8·H2O (DPED = 1,2-diphenylethylenediammonium), which can directly produce circularly polarized second harmonic generation (CP-SHG) through linearly polarized infrared light excitation, exhibiting a polarization efficiency as high as 37% at room temperature. To understand the spin relaxation mechanisms behind the high polarization efficiency, we utilized two models, so-called D’yakonov-Perel’ (DP) and Bir-Aronov-Pikus (BAP) mechanisms. The unique zigzag inorganic frameworks within the hybrid structure are believed to reduce the dielectric confinement and exciton binding energy, thus enhancing spin polarization, especially in regions with a high excitation pump fluence based on the DP mechanism. In the case of low excitation pump fluence, the BAP mechanism dominates, as evidenced by the observed decrease in the polarization ratio from CP-SHG measurement. Using density functional theory analysis, we elucidate how the distinctive 8-coordination environment of lead bromide building blocks effectively suppresses spin-orbit coupling at the conduction band minimum. This suppression significantly diminishes spin-splitting, thereby slowing the spin relaxation rate.en
dc.description.versionPublished versionen
dc.format.extent10 page(s)en
dc.format.mimetypeapplication/pdfen
dc.identifier.doihttps://doi.org/10.1021/jacs.4c00619en
dc.identifier.eissn1520-5126en
dc.identifier.issn0002-7863en
dc.identifier.issue17en
dc.identifier.orcidQuan, Lina [0000-0001-9301-3764]en
dc.identifier.orcidSlebodnick, Carla [0000-0003-4188-7595]en
dc.identifier.pmid38570347en
dc.identifier.urihttps://hdl.handle.net/10919/124603en
dc.identifier.volume146en
dc.language.isoenen
dc.publisherAmerican Chemical Societyen
dc.relation.urihttps://www.ncbi.nlm.nih.gov/pubmed/38570347en
dc.rightsCreative Commons Attribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/en
dc.titleDirect Observation of Circularly Polarized Nonlinear Optical Activities in Chiral Hybrid Lead Halidesen
dc.title.serialJournal of the American Chemical Societyen
dc.typeArticle - Refereeden
dc.type.dcmitypeTexten
dc.type.otherArticleen
dc.type.otherJournalen
pubs.organisational-groupVirginia Techen
pubs.organisational-groupVirginia Tech/Scienceen
pubs.organisational-groupVirginia Tech/Science/Chemistryen
pubs.organisational-groupVirginia Tech/All T&R Facultyen
pubs.organisational-groupVirginia Tech/Science/COS T&R Facultyen

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