Cysteine-mediated green synthesis of copper sulphide nanoparticles: biocompatibility studies and characterization as counter electrodes

dc.contributor.authorSaona, Luis A.
dc.contributor.authorCampo Giraldo, Jessica L.
dc.contributor.authorAnziani Ostuni, Giovanna.
dc.contributor.authorÓrdenes Aenishanslins, Nicolás.
dc.contributor.authorVenegas, Felipe A.
dc.contributor.authorGiordana, María F.
dc.contributor.authorDíaz, Carlos
dc.contributor.authorIsaacs, Mauricio
dc.contributor.authorBravo, Denisse
dc.contributor.authorPérez Donoso, José M.
dc.date.accessioned2024-09-03T19:21:13Z
dc.date.available2024-09-03T19:21:13Z
dc.date.issued2022
dc.description.abstractA one-pot green method for aqueous synthesis of fluorescent copper sulphide nanoparticles (NPs) was developed. The reaction was carried out in borax–citrate buffer at physiological pH, 37 °C, aerobic conditions and using Cu (II) and the biological thiol cysteine. NPs exhibit green fluorescence with a peak at 520 nm when excited at 410 nm and an absorbance peak at 410 nm. A size between 8–12 nm was determined by dynamic light scattering and transmission electron microscopy. An interplanar atomic distance of (3.5 ± 0.1) Å and a hexagonal chalcocite crystalline structure (βCh) of Cu2S NPs were also determined (HR-TEM). Furthermore, FTIR analyses revealed a Cu-S bond and the presence of organic molecules on NPs. Regarding toxicity, fluorescent Cu2S NPs display high biocompatibility when tested in cell lines and bacterial strains. Electrocatalytic activity of Cu2S NPs as counter electrodes was evaluated, and the best value of charge transfer resistance (Rct) was obtained with FTO/Cu2S (four layers). Consequently, the performance of biomimetic Cu2S NPs as counter electrodes in photovoltaic devices constructed using different sensitizers (ruthenium dye or CdTe NPs) and electrolytes (S2−/Sn2− or I−/I3−) was successfully checked. Altogether, novel characteristics of copper sulfide NPs such as green, simple, and inexpensive production, spectroscopic properties, high biocompatibility, and particularly their electrochemical performance, validate its use in different biotechnological applications.
dc.facultadFacultad de Salud y Ciencias Sociales
dc.format.extent12 páginas
dc.format.extent3.055Mb
dc.format.mimetypePDF
dc.identifier.citationNanomaterials, 12(18), 12 p.
dc.identifier.doi10.3390/nano12183194
dc.identifier.issn2079-4991
dc.identifier.urihttp://repositorio.udla.cl/xmlui/handle/udla/1612
dc.identifier.urihttps://www.mdpi.com/journal/nanomaterials
dc.language.isoeng
dc.publisherMDPI
dc.rightsCreative Commons Attribution License (CC BY)
dc.sourceNanomaterials
dc.subjectCounter electrode
dc.subjectCu2S NPs
dc.subjectFluorescent nanoparticles
dc.subjectGreen synthesis
dc.titleCysteine-mediated green synthesis of copper sulphide nanoparticles: biocompatibility studies and characterization as counter electrodes
dc.typeArtículo
dc.udla.catalogadorCBM
dc.udla.indexCROSSREF
dc.udla.indexFATCAT
dc.udla.indexMIRABEL
dc.udla.indexPUBMED
dc.udla.indexPUBMEDCENTRAL
dc.udla.indexROAD
dc.udla.indexScopus
dc.udla.indexTHE KEEPERS
dc.udla.indexZDB
dc.udla.indexWoS
dc.udla.indexWIKIDATA
dc.udla.indexSUDOC
dc.udla.indexSHERPA ROMEO
dc.udla.indexOPENALEX
dc.udla.indexDOAJ

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