Impact of Mn-dopant concentration in observing narrowing of band-gap, urbach tail and paramagnetism in anatase TiO nanocrystals
Here, in the present investigation, we have performed detailed structural, optical and magnetic studies on Mn-doped TiO 2 nanocrystals derived by a sol-gel technique. X-ray diffraction (XRD) studies reveal the formation of a single phase tetragonal anatase structure for all the Mn-doped TiO 2 nanocr...
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Published in | New journal of chemistry Vol. 43; no. 37; pp. 14786 - 14799 |
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Main Authors | , , , |
Format | Journal Article |
Published |
23.09.2019
|
Online Access | Get full text |
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Summary: | Here, in the present investigation, we have performed detailed structural, optical and magnetic studies on Mn-doped TiO
2
nanocrystals derived by a sol-gel technique. X-ray diffraction (XRD) studies reveal the formation of a single phase tetragonal anatase structure for all the Mn-doped TiO
2
nanocrystals. The X-ray photoelectron spectroscopy (XPS) results suggest the existence of Mn
2+
/Mn
3+
in the present system and a peak shift towards lower angle ascertains the incorporation of Mn ions into the TiO
2
lattice. Raman peak shifts associated with broadening of peaks validate the XPS and XRD results where the possible existence of any secondary phases is completely ruled out. The size-strain plots, crystallite size estimation and transmission electron microscopy analysis reveal the particle size of the prepared nanocrystals to be in the range 12-14 nm. Functional groups present are identified using Fourier transform infra-red spectroscopy. UV-visible spectroscopy shows a clear visible range absorption illustrating the promising band-gap narrowing and photoluminescence intensity decreases with Mn concentration, which is attributed to the availability of numerous oxygen vacancy centers associated with the present system. All the Mn-doped samples exhibit a clear paramagnetic (PM) behavior at 300 K and the PM contribution increases as the Mn concentration is increased from 3% to 12%. A significant PM contribution with Mn-doped TiO
2
nanocrystals having a different Mn concentration has been studied. To carry out a detailed outlook, the different possible magnetic interactions are considered here and isolated bound magnetic polaron (BMP) formation is proposed to be the reason for the present system exhibiting the PM behavior, where the isolated magnetic spins associated with Mn
2+
/Mn
3+
in the doped compounds are responsible for the observed PM behavior. Increase in isolated Mn ions increases the possibility of trapping of electrons in the vacancy centers that contribute less towards BMP formation and ultimately leading to a PM ordering. The interesting optical properties and magnetic interactions exhibited by Mn-doped TiO
2
make it a potential candidate for functional devices and applications.
In addition to the numerous applications of Mn-doped TiO
2
, it could be a potential candidate as a dilute magnetic semiconductor. |
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Bibliography: | nanocrystals, high resolution XPS spectra of Ti 2p and O 1s of pristine TiO TEM micrographs showing the nanocrystal formation for T6Mn and T9Mn, EDS spectra of T6Mn and T9Mn, refinement parameters obtained for undoped and Mn-doped TiO 2 Electronic supplementary information (ESI) available: Estimation of FWHM from the most intense (101) peak of all the doped samples, refined XRD patterns of pristine TiO 10.1039/c9nj02884f nanocrystals, variation of FWHM with Mn doping for all the samples, and ED-XRFS results showing Ti : Mn ratio for all the Mn-doped TiO nanocrystals. See DOI deconvoluted Raman spectra of 3% Mn-doped TiO |
ISSN: | 1144-0546 1369-9261 |
DOI: | 10.1039/c9nj02884f |