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volume 11 issue 11 pages 2817

Impedance Spectroscopy Analysis of PbSe Nanostructures Deposited by Aerosol Assisted Chemical Vapor Deposition Approach

Sadia Iram 1, 2
Azhar Mahmood 1
Muhammad Fahad Ehsan 1
Asad Mumtaz 1
Manzar Sohail 1
Effat Sitara 1
Shehla Mushtaq 1
MOHAMMAD AZAD MALIK 2
Syeda Arooj Fatima 3
Rubina Shaheen 3
Nasir Mahmood Ahmad 4
Sajid Nawaz Malik 4
Publication typeJournal Article
Publication date2021-10-23
scimago Q1
wos Q2
SJR0.811
CiteScore9.2
Impact factor4.3
ISSN20794991
PubMed ID:  34835581
General Chemical Engineering
General Materials Science
Abstract

This research endeavor aimed to synthesize the lead (II) diphenyldiselenophosphinate complex and its use to obtain lead selenide nanostructured depositions and further the impedance spectroscopic analysis of these obtained PbSe nanostructures, to determine their roles in the electronics industry. The aerosol-assisted chemical vapor deposition technique was used to provide lead selenide deposition by decomposition of the complex at different temperatures using the glass substrates. The obtained films were revealed to be a pure cubic phase PbSe, as confirmed by X-ray diffraction analysis. SEM and TEM micrographs demonstrated three-dimensionally grown interlocked or aggregated nanocubes of the obtained PbSe. Characteristic dielectric measurements and the impedance spectroscopy analysis at room temperature were executed to evaluate PbSe properties over the frequency range of 100 Hz–5 MHz. The dielectric constant and dielectric loss gave similar trends, along with altering frequency, which was well explained by the Koops theory and Maxwell–Wagner theory. The effective short-range translational carrier hopping gave rise to an overdue remarkable increase in ac conductivity (σac) on the frequency increase. Fitting of a complex impedance plot was carried out with an equivalent circuit model (Rg Cg) (Rgb Qgb Cgb), which proved that grains, as well as grain boundaries, are responsible for the relaxation processes. The asymmetric depressed semicircle with the center lower to the impedance real axis provided a clear explanation of non-Debye dielectric behavior.

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Iram S. et al. Impedance Spectroscopy Analysis of PbSe Nanostructures Deposited by Aerosol Assisted Chemical Vapor Deposition Approach // Nanomaterials. 2021. Vol. 11. No. 11. p. 2817.
GOST all authors (up to 50) Copy
Iram S., Mahmood A., Ehsan M. F., Mumtaz A., Sohail M., Sitara E., Mushtaq S., MALIK M. A., Fatima S. A., Shaheen R., Ahmad N. M., Malik S. N. Impedance Spectroscopy Analysis of PbSe Nanostructures Deposited by Aerosol Assisted Chemical Vapor Deposition Approach // Nanomaterials. 2021. Vol. 11. No. 11. p. 2817.
RIS |
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RIS Copy
TY - JOUR
DO - 10.3390/nano11112817
UR - https://doi.org/10.3390/nano11112817
TI - Impedance Spectroscopy Analysis of PbSe Nanostructures Deposited by Aerosol Assisted Chemical Vapor Deposition Approach
T2 - Nanomaterials
AU - Iram, Sadia
AU - Mahmood, Azhar
AU - Ehsan, Muhammad Fahad
AU - Mumtaz, Asad
AU - Sohail, Manzar
AU - Sitara, Effat
AU - Mushtaq, Shehla
AU - MALIK, MOHAMMAD AZAD
AU - Fatima, Syeda Arooj
AU - Shaheen, Rubina
AU - Ahmad, Nasir Mahmood
AU - Malik, Sajid Nawaz
PY - 2021
DA - 2021/10/23
PB - MDPI
SP - 2817
IS - 11
VL - 11
PMID - 34835581
SN - 2079-4991
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2021_Iram,
author = {Sadia Iram and Azhar Mahmood and Muhammad Fahad Ehsan and Asad Mumtaz and Manzar Sohail and Effat Sitara and Shehla Mushtaq and MOHAMMAD AZAD MALIK and Syeda Arooj Fatima and Rubina Shaheen and Nasir Mahmood Ahmad and Sajid Nawaz Malik},
title = {Impedance Spectroscopy Analysis of PbSe Nanostructures Deposited by Aerosol Assisted Chemical Vapor Deposition Approach},
journal = {Nanomaterials},
year = {2021},
volume = {11},
publisher = {MDPI},
month = {oct},
url = {https://doi.org/10.3390/nano11112817},
number = {11},
pages = {2817},
doi = {10.3390/nano11112817}
}
MLA
Cite this
MLA Copy
Iram, Sadia, et al. “Impedance Spectroscopy Analysis of PbSe Nanostructures Deposited by Aerosol Assisted Chemical Vapor Deposition Approach.” Nanomaterials, vol. 11, no. 11, Oct. 2021, p. 2817. https://doi.org/10.3390/nano11112817.