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Effect of lithium doping and precursors on the microstructural, surface electronic and luminescence properties of single crystalline microtubular tin oxide structures
Li doped SnO 2 microtubes were obtained by thermal evaporation using two different starting materials as precursors: Li doped SnO 2 nanoparticles synthesized by a soft chemistry method or a mixture of commercial SnO 2 and Li 2 CO 3 powders. In both cases the controlled lithium content was in the ran...
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Published in: | CrystEngComm 2017, Vol.19 (30), p.4321-4329 |
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Main Authors: | , , , , , |
Format: | Article |
Language: | English |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Li doped SnO
2
microtubes were obtained by thermal evaporation using two different starting materials as precursors: Li doped SnO
2
nanoparticles synthesized by a soft chemistry method or a mixture of commercial SnO
2
and Li
2
CO
3
powders. In both cases the controlled lithium content was in the range from 10 to 30 cationic %. The microstructures are grown following a vapor–solid mechanism assisted by dislocations. The density of the obtained structures was slightly lower for the nanoparticle-based samples, although the treatments last for longer times in comparison to that of the commercial mixture-based samples. A study of the surface electronic properties and the luminescence emission of the different microtubes reveals a variable defect distribution in the samples depending on the precursor used. Oxygen vacancies and/or tin interstitials are generated to compensate for the charge imbalance due to the lithium incorporation in tin lattice sites together with the reduction of neighboring tin atoms. The microstructural characterization of the samples has been carried out by X-ray diffraction, Raman spectroscopy, and electron backscattered diffraction. X-ray photoemission spectroscopy and cathodoluminescence measurements allow comparison of pathways which favor the incorporation of the dopant into the structure and the interaction of lithium with native defects. |
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ISSN: | 1466-8033 1466-8033 |
DOI: | 10.1039/C7CE00856B |