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dc.date.accessioned2022-09-08T18:49:16Z
dc.date.available2022-09-08T18:49:16Z
dc.date.issued2022-04-24es_MX
dc.identifier.urihttp://cathi.uacj.mx/20.500.11961/22193
dc.description.abstractA comprehensive study of the K2Mn(SO4)2(H2O)2 double salt crystal with a kro¨hnkite-type framework is presented. Structural, morphological, thermal, vibrational, and optical properties have been explored and discussed. Moreover, calculations based on the density-functional perturbation theory were performed to accurately analyze inter- and intra-molecular vibrational modes, presenting 111 optical phonon modes in the spectral region of 50–3650 cm-1. The X-ray diffraction studies confirmed that the K2Mn(SO4)2(H2O)2 system crystallizes in triclinic symmetry with P1 (C1i) space group. In addition, the crystal was thermally stable from 300 K up to near 360 K and has an optical band gap of 5.78 eV, typical of insulating material. Nevertheless, when optically excited at 3.1 eV (at 400 nm), i.e., resonantly with the 6A1g(S) ? 4A1g(G), 4Eg(G) electronic transition of Mn2? ion, a dual-emission was detected: green–yellow (& 562 nm) and orange (& 598 nm—more intense emission), both corresponding to 4T1g(G) ? 6A1g(S) deexcitation. The dual behavior is due to the two differentMn2? luminescent species occupying slightly distorted octahedral (orange emission) and tetrahedral (green– yellow emission) sites. From the optical spectrum and Tanabe-Sugano diagram, the crystal-field strength and the Racah interelectronic-repulsion parameters were also estimated. The findings suggest that changes in the Mn coordination number (four- and six-fold) and in the crystalline field, the latter either by adequate doping or by the growth of mixed crystals, could lead to a tuning of the wavelength of the emitted light (from green to deep red).es_MX
dc.description.urihttps://link.springer.com/article/10.1007/s10853-022-07188-7#citeases_MX
dc.language.isoen_USes_MX
dc.relation.ispartofProducto de investigación IITes_MX
dc.relation.ispartofInstituto de Ingeniería y Tecnologíaes_MX
dc.rightsAtribución-NoComercial-SinDerivadas 2.5 México*
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.5/mx/*
dc.subjectMaterials, Salt, Synthesis, Raman, Theoryes_MX
dc.subject.otherinfo:eu-repo/classification/cti/1es_MX
dc.titleKröhnkite-type K2Mn(SO4)2(H2O)2 double salt: synthesis, structure, and propertieses_MX
dc.typeArtículoes_MX
dcterms.thumbnailhttp://ri.uacj.mx/vufind/thumbnails/rupiiit.pnges_MX
dcrupi.institutoInstituto de Ingeniería y Tecnologíaes_MX
dcrupi.cosechableSies_MX
dcrupi.volumen57es_MX
dcrupi.nopagina8195-8210es_MX
dc.identifier.doihttps://doi.org/10.1007/s10853-022-07188-7es_MX
dc.contributor.coauthorRamos Murillo, Manuel Antonio
dc.journal.titleJournal of Materials Sciencees_MX
dc.contributor.authorexternoG. de Oliveira Neto, Joao
dc.contributor.coauthorexternoLang, Rossano
dc.contributor.coauthorexternoO. Rodriguez, Jéssica A.
dc.contributor.coauthorexternoO. Gutierrez, Carlos E.
dc.contributor.coauthorexternoF. de Sousa, Francisco
dc.contributor.coauthorexternoSilva Filho, Jose G.
dc.contributor.coauthorexternoO. dos Santos, Adenilson
dcrupi.colaboracionextBrasiles_MX
dcrupi.pronacesEnergía y Cambio Climáticoes_MX
dcrupi.vinculadoproyintEstudios computacionales de la estructura electrónica y sus propiedades efectivas por la teoría funcional de densidad (RIPI2021IIT1)es_MX


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