Please use this identifier to cite or link to this item: https://doi.org/10.1016/j.apcatb.2019.03.001
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dc.titleEffective hydrogenation of g-C3N4 for enhanced photocatalytic performance revealed by molecular structure dynamics
dc.contributor.authorYan Gong
dc.contributor.authorHongkun Li
dc.contributor.authorChen Jiao
dc.contributor.authorQingchi Xu
dc.contributor.authorXiangyu Xu
dc.contributor.authorXiuming Zhang
dc.contributor.authorYufei Liu
dc.contributor.authorZiyang Dai
dc.contributor.authorXiang Yang Liu
dc.contributor.authorWei Chen
dc.contributor.authorLei Liu
dc.contributor.authorDa Zhan
dc.date.accessioned2020-06-04T03:43:24Z
dc.date.available2020-06-04T03:43:24Z
dc.date.issued2019-08-05
dc.identifier.citationYan Gong, Hongkun Li, Chen Jiao, Qingchi Xu, Xiangyu Xu, Xiuming Zhang, Yufei Liu, Ziyang Dai, Xiang Yang Liu, Wei Chen, Lei Liu, Da Zhan (2019-08-05). Effective hydrogenation of g-C3N4 for enhanced photocatalytic performance revealed by molecular structure dynamics. APPLIED CATALYSIS B-ENVIRONMENTAL 250 : 63-70. ScholarBank@NUS Repository. https://doi.org/10.1016/j.apcatb.2019.03.001
dc.identifier.issn0926-3373
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/169203
dc.description.abstract© 2019 Elsevier B.V. In this work, we report a simple, facile and effective method to simultaneously hydrogenate and exfoliate graphitic-C3N4 (g-C3N4) through high concentration sulfuric acid treatment. The hydrogenation mechanism of g-C3N4 is explained experimentally and it is further revealed in detail by molecular structure dynamics as well as the corresponding electronic structure evolutions. Five different atomic sites in unit cell of g-C3N4 are structurally available to be hydrogenated, and four of them are energetically favored to form hydrogenated structures. Different from the pristine g-C3N4 that is flat in basal plane, the energetically favored hydrogenation structure of g-C3N4 possesses the corrugated fluctuation plane. The hydrogenated g-C3N4 structures also present blueshifted UV–vis absorption and photoluminesce (PL) peaks compared to that of pristine g-C3N4, and it is well explained by theoretical calculation results that the bandgap becomes larger due to hydrogenation. Finally, it is found that the photocatalytic performance of g-C3N4 is dramatically enhanced once the crystal structure is hydrogenated. The enhanced photocatalytic performance is mainly attributed to the hydrogenation caused spatial charge separation due to the redistribution of charge density in both valence band maximum and conduction band minimum. The revealing of spatial charge separation provides insight into the deep understanding of hydrogenation mechanism of g-C3N4, which is critically significant for designing light-efficient photocatalysis.
dc.language.isoen
dc.publisherELSEVIER SCIENCE BV
dc.sourceElements
dc.subjectScience & Technology
dc.subjectPhysical Sciences
dc.subjectTechnology
dc.subjectChemistry, Physical
dc.subjectEngineering, Environmental
dc.subjectEngineering, Chemical
dc.subjectChemistry
dc.subjectEngineering
dc.subjectg-C3N4
dc.subjectHydrogenation
dc.subjectMolecular structure dynamics
dc.subjectPhotocatalysis
dc.subjectCharge separation
dc.subjectGRAPHITIC CARBON NITRIDE
dc.subjectNANOSHEETS
dc.subjectHETEROJUNCTION
dc.subjectWATER
dc.subjectPHOTODEGRADATION
dc.subjectCONSTRUCTION
dc.subjectDEGRADATION
dc.subjectABSORPTION
dc.subjectSTEP
dc.typeArticle
dc.date.updated2020-05-29T08:27:52Z
dc.contributor.departmentCHEMISTRY
dc.contributor.departmentPHYSICS
dc.description.doi10.1016/j.apcatb.2019.03.001
dc.description.sourcetitleAPPLIED CATALYSIS B-ENVIRONMENTAL
dc.description.volume250
dc.description.page63-70
dc.published.statePublished
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