Registro completo de metadatos
Campo DC Valor Lengua/Idioma
dc.rights.licenseReconocimiento 4.0 Internacional. (CC BY)-
dc.contributor.authorViera Reyes, Martinaes
dc.contributor.authorMombrú Frutos, Maiaes
dc.contributor.authorPereyra, Javieres
dc.contributor.authorAguiar, Ivanaes
dc.date.accessioned2026-05-19T14:46:57Z-
dc.date.available2026-05-19T14:46:57Z-
dc.date.issued2025-10-
dc.identifier.urihttps://hdl.handle.net/20.500.12381/5543-
dc.description.abstractThere are various technological approaches for the fabrication of radiation detectors. While single crystals offer excellent properties, their growth is challenging for certain compounds, and more importantly, demand a lot of time and energy. As an alternative, pellet-based detectors are a more accessible, robust, and scalable option that is gaining attention[ref nature]. This research focuses on pellets based on a nanocomposite of BiSI and amorphous carbon: Previous research conducted by our group has shown that BiSI can detect low energy gamma and X-ray radiation, and the inclusion of amorphous carbon in the starting material and thermal treatment enhances device performance [2]. To optimize the pellet fabrication process, and eventually the device performance, different BiSI-to-carbon ratios were evaluated, along with thermal treatments applied both during pressing (in situ) and after pressing (ex situ). Both the starting materials and the pellets were characterized by powder X-ray diffraction (XRD), confirming the formation of a single BiSI phase, which remains stable after both in situ and ex situ thermal treatments. Scanning electron microscopy (SEM) revealed that the initial powder consists of nanorods with an average size of 300 nm, and amorphous carbon particles with an average diameter of 5.7 μm. In pellets subjected to in situ thermal treatment, sintering of nanorods on the surface was observed, along with the coalescence of amorphous carbon particles both inside and on the surface of the pellet. In contrast, ex situ treated pellets showed no evidence of sintering on the surface or in the interior for either material. The upcoming phase of this research will be dedicated to the development of prototype radiation detectors. These will be subjected to thorough electrical characterization to explore their potential for future technological applications.es
dc.description.sponsorshipAgencia Nacional de Investigación e Innovaciónes
dc.description.sponsorshipPrograma de Desarrollo de las Ciencias Básicases
dc.language.isoenges
dc.relationhttps://hdl.handle.net/20.500.12381/5544-
dc.rightsAcceso abierto*
dc.sourceXXIII Encontro da SBPMat. Salvador de Bahía, Brasil, 28 de setiembre al 2 de octubre.es
dc.subjectPellet-based detectores
dc.subjectSemiconductores
dc.subjectNanocompositees
dc.titleEffect of Thermal Treatment on the Structure and Morphology of BiSI Pellets for Radiation Detector Applicationses
dc.typeDocumento de conferenciaes
dc.subject.aniiIngeniería y Tecnología-
dc.subject.aniiIngeniería de los Materiales-
dc.identifier.aniiPOS_FCE_2023_1_1011979es
dc.identifier.aniiFCE_1_2023_1_176224es
dc.type.versionPublicadoes
dc.anii.institucionresponsableUniversidad de la República. Facultad de Químicaes
dc.anii.institucionresponsableUniversidad de la República. Facultad de Ingenieríaes
dc.anii.subjectcompleto//Ingeniería y Tecnología/Ingeniería de los Materiales/Ingeniería de los Materialeses
Aparece en las colecciones: Publicaciones de ANII

Archivos en este ítem:
archivo  Descripción Tamaño Formato
Martina - Poster SbPMat 2025.pdfDescargar 7.67 MBAdobe PDF

Las obras en REDI están protegidas por licencias Creative Commons.
Por más información sobre los términos de esta publicación, visita: Reconocimiento 4.0 Internacional. (CC BY)