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Fizika i Tekhnika Poluprovodnikov, 2020, Volume 54, Issue 11, Page 1224 (Mi phts6671)  

This article is cited in 21 scientific papers (total in 21 papers)

Semiconductor structures, low-dimensional systems, quantum phenomena

Manganese-doped ZnS QDs: an investigation into the optimal amount of doping

S. Tomarab, S. Guptab, S. Mukherjeec, A. Singhd, S. Kumare, R. K. Choubeyb

a Applied Science & Humanities Department, ABES Engineering College, Campus-1, 19th KM Stone, NH-24, Ghaziabad U.P.-201009, India
b Department of Applied Physics, Amity Institute of Applied Sciences (AIAS), Amity University, Noida Campus, Sector-125, Noida 201313, Uttar Pradesh, India
c Department of Physics, National Institute of Technology, Patna 800005, Bihar, India
d Department of Physics, Faculty of Natural Sciences Jamia Millia Islamia, Central University, New Delhi-110025, India
e Department of Physics, Indira Gandhi University, Meerpur-122502, Rewari, Haryana, India
Full-text PDF (33 kB) Citations (21)
Abstract: In the present study, undoped and Mn-doped ZnS, Zn$_{1-x}$Mn$_x$S ($x$ = 0, 0.02, 0.06, 0.10) quantum dots (QDs) were successfully synthesized using the simple co-precipitation method. The synthesized samples were thoroughly studied using X-ray diffraction (XRD), UV-visible absorption, high-resolution transmission electron microscopy (HRTEM) with selected area of the electron diffraction, scanning electron microscope with energy dispersive X-ray spectra, photoluminescence emission (PLE), and Fourier transform infrared spectroscopy. The XRD pattern confirmed the cubic zinc-blende phase at low doping concentration; however, at higher Mn-doping concentration hetaerolite phase formation was observed. The calculated particle size using Debye–Scherrer relation was found between 1.90–2.35 nm, which was also confirmed by HRTEM analysis. The blue shift in the absorption peak of all the prepared ZnS QDs as compared to bulk ZnS was indicative of the formation of nanoparticles and the calculated band gap was in the range of 3.94–4.11 eV. The PLE spectroscopy of the synthesized QDs was performed at the excitation wavelength of 280 nm and corresponding emission spectroscopy confirmed the surface defects in synthesized ZnS QDs.
Keywords: ZnS, Mn, quantum dots, XRD, photoluminescence emission.
Funding agency Grant number
Council of Science and Technology, Lucknow, Uttar Pradesh, India CST/4051
One of the authors, Ravi Kant Choubey is thankful to the Council of Science and Technology, Lucknow, Uttar Pradesh, India for the financial support (Vide no. CST/4051).
Received: 07.07.2020
Revised: 07.07.2020
Accepted: 15.07.2020
English version:
Semiconductors, 2020, Volume 54, Issue 11, Pages 1450–1458
DOI: https://doi.org/10.1134/S106378262011024X
Document Type: Article
Language: English
Citation: S. Tomar, S. Gupta, S. Mukherjee, A. Singh, S. Kumar, R. K. Choubey, “Manganese-doped ZnS QDs: an investigation into the optimal amount of doping”, Fizika i Tekhnika Poluprovodnikov, 54:11 (2020), 1224; Semiconductors, 54:11 (2020), 1450–1458
Citation in format AMSBIB
\Bibitem{TomGupMuk20}
\by S.~Tomar, S.~Gupta, S.~Mukherjee, A.~Singh, S.~Kumar, R.~K.~Choubey
\paper Manganese-doped ZnS QDs: an investigation into the optimal amount of doping
\jour Fizika i Tekhnika Poluprovodnikov
\yr 2020
\vol 54
\issue 11
\pages 1224
\mathnet{http://mi.mathnet.ru/phts6671}
\transl
\jour Semiconductors
\yr 2020
\vol 54
\issue 11
\pages 1450--1458
\crossref{https://doi.org/10.1134/S106378262011024X}
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  • This publication is cited in the following 21 articles:
    Citing articles in Google Scholar: Russian citations, English citations
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