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Towards control of the size, composition and surface area of NiO nanostructures by Sn doping

dc.contributor.authorTaeño González, María
dc.contributor.authorMaestre Varea, David
dc.contributor.authorRamírez Castellanos, Julio
dc.contributor.authorLi, Shaohui
dc.contributor.authorLee, Pooi See
dc.contributor.authorCremades Rodríguez, Ana Isabel
dc.date.accessioned2023-06-17T09:02:07Z
dc.date.available2023-06-17T09:02:07Z
dc.date.issued2021-02
dc.description© 2021 by the authors.Licensee MDPI This research was funded by FEDER/M-ERA.Net Cofund projects: RTI2018-097195-B-I00 and PCIN-2017-106.
dc.description.abstractAchieving nanostructures with high surface area is one of the most challenging tasks as this metric usually plays a key role in technological applications, such as energy storage, gas sensing or photocatalysis, fields in which NiO is gaining increasing attention recently. Furthermore, the advent of modern NiO-based devices can take advantage of a deeper knowledge of the doping process in NiO, and the fabrication of p-n heterojunctions. By controlling experimental conditions such as dopant concentration, reaction time, temperature or pH, NiO morphology and doping mechanisms can be modulated. In this work, undoped and Sn doped nanoparticles and NiO/SnO_2 nanostructures with high surface areas were obtained as a result of Sn incorporation. We demonstrate that Sn incorporation leads to the formation of nanosticks morphology, not previously observed for undoped NiO, promoting p-n heterostructures. Consequently, a surface area value around 340 m^2/g was obtained for NiO nanoparticles with 4.7 at.% of Sn, which is nearly nine times higher than that of undoped NiO. The presence of Sn with different oxidation states and variable Ni^(3+)/Ni^(2+) ratio as a function of the Sn content were also verified by XPS, suggesting a combination of two charge compensation mechanisms (electronic and ionic) for the substitution of Ni^(2+) by Sn^(4+). These results make Sn doped NiO nanostructures a potential candidate for a high number of technological applications, in which implementations can be achieved in the form of NiO-SnO_2 p-n heterostructures.
dc.description.departmentDepto. de Física de Materiales
dc.description.facultyFac. de Ciencias Físicas
dc.description.refereedTRUE
dc.description.sponsorshipMinisterio de Ciencia e Innovación (MICINN)/FEDER
dc.description.statuspub
dc.eprint.idhttps://eprints.ucm.es/id/eprint/64852
dc.identifier.doi10.3390/nano11020444
dc.identifier.issn2079-4991
dc.identifier.officialurlhttp://dx.doi.org/10.3390/nano11020444
dc.identifier.relatedurlhttps://www.mdpi.com/2079-4991/11/2/444
dc.identifier.urihttps://hdl.handle.net/20.500.14352/7992
dc.issue.number2
dc.journal.titleNanomaterials
dc.language.isoeng
dc.publisherMDPI
dc.relation.projectID(RTI2018-097195-B-I00; PCIN-2017-10)
dc.rightsAtribución 3.0 España
dc.rights.accessRightsopen access
dc.rights.urihttps://creativecommons.org/licenses/by/3.0/es/
dc.subject.cdu538.9
dc.subject.keywordNickel oxide
dc.subject.keywordNanoparticles
dc.subject.keywordNanosticks
dc.subject.keywordHigh surface area
dc.subject.keywordDoping mechanisms
dc.subject.ucmFísica de materiales
dc.subject.ucmFísica del estado sólido
dc.subject.unesco2211 Física del Estado Sólido
dc.titleTowards control of the size, composition and surface area of NiO nanostructures by Sn doping
dc.typejournal article
dc.volume.number11
dspace.entity.typePublication
relation.isAuthorOfPublication8bac0d43-38ee-4615-8ca8-9119704e63f5
relation.isAuthorOfPublication43cbf291-2f80-4902-8837-ea2a9ffaa702
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relation.isAuthorOfPublication.latestForDiscovery8bac0d43-38ee-4615-8ca8-9119704e63f5

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