Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires

Here, we report the successful incorporation of group I elements (K, Na, Li) to ZnO nanowires. Three distinct (2, 4, and 6 wt.%) doping concentrations of group I elements have been used to generate high piezoelectric voltage by employing a vertically integrated nanowire generator (VING) structure. X...

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Published in:Micromachines
Main Author: Ahmad M.; Ahmad M.K.; Mamat M.H.; Mohamed A.; Suriani A.B.; Ismail N.M.A.N.; Soon C.F.; Nafarizal N.
Format: Article
Language:English
Published: MDPI 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138741388&doi=10.3390%2fmi13091450&partnerID=40&md5=00f983e59eaa8599b0bd2219d48c2f82
id 2-s2.0-85138741388
spelling 2-s2.0-85138741388
Ahmad M.; Ahmad M.K.; Mamat M.H.; Mohamed A.; Suriani A.B.; Ismail N.M.A.N.; Soon C.F.; Nafarizal N.
Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
2022
Micromachines
13
9
10.3390/mi13091450
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138741388&doi=10.3390%2fmi13091450&partnerID=40&md5=00f983e59eaa8599b0bd2219d48c2f82
Here, we report the successful incorporation of group I elements (K, Na, Li) to ZnO nanowires. Three distinct (2, 4, and 6 wt.%) doping concentrations of group I elements have been used to generate high piezoelectric voltage by employing a vertically integrated nanowire generator (VING) structure. X-ray photoelectron spectra (XPS) indicated the seepage of dopants in ZnO nanowires by substitution of Zn. Shallow acceptor levels (LiZn, NaZn, KZn) worked as electron trapping centers for intrinsically n-type ZnO nanowires. Free moving electrons caused a leakage current through the nanowires and depleted their piezoelectric potential. Reverse leakage current is a negative factor for piezoelectric nanogenerators. A reduction in reverse leakage current signifies the rise in output voltage. A gradual rise in output voltage has been witnessed which was in accordance with various doping concentrations. K-doped ZnO nanowires have generated voltages of 0.85 V, 1.48 V, and 1.95 V. For Na-doped ZnO nanowires, the voltages were 1.23 V, 1.73 V, and 2.34 V and the voltages yeilded for Li-doped ZnO nanowires were 1.87 V, 2.63 V, and 3.54 V, respectively. Maximum voltage range has been further enhanced by the surface enrichment (oxidized with O2 molecules) of ZnO nanowires. Technique has been opted to mitigate the screening effect during an external stress. After 5 h of oxidation in a sealed chamber at 100 ppm, maximum voltage peaks were pronounced to 2.48 V, 3.19 V, and 4.57 V for K, Na, and Li, respectively. A low-cost, high performance mechanical transducer is proposed for self-powered devices. © 2022 by the authors.
MDPI
2072666X
English
Article
All Open Access; Gold Open Access; Green Open Access
author Ahmad M.; Ahmad M.K.; Mamat M.H.; Mohamed A.; Suriani A.B.; Ismail N.M.A.N.; Soon C.F.; Nafarizal N.
spellingShingle Ahmad M.; Ahmad M.K.; Mamat M.H.; Mohamed A.; Suriani A.B.; Ismail N.M.A.N.; Soon C.F.; Nafarizal N.
Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
author_facet Ahmad M.; Ahmad M.K.; Mamat M.H.; Mohamed A.; Suriani A.B.; Ismail N.M.A.N.; Soon C.F.; Nafarizal N.
author_sort Ahmad M.; Ahmad M.K.; Mamat M.H.; Mohamed A.; Suriani A.B.; Ismail N.M.A.N.; Soon C.F.; Nafarizal N.
title Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
title_short Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
title_full Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
title_fullStr Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
title_full_unstemmed Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
title_sort Effects of Group-I Elements on Output Voltage Generation of ZnO Nanowires Based Nanogenerator; Degradation of Screening Effects by Oxidation of Nanowires
publishDate 2022
container_title Micromachines
container_volume 13
container_issue 9
doi_str_mv 10.3390/mi13091450
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138741388&doi=10.3390%2fmi13091450&partnerID=40&md5=00f983e59eaa8599b0bd2219d48c2f82
description Here, we report the successful incorporation of group I elements (K, Na, Li) to ZnO nanowires. Three distinct (2, 4, and 6 wt.%) doping concentrations of group I elements have been used to generate high piezoelectric voltage by employing a vertically integrated nanowire generator (VING) structure. X-ray photoelectron spectra (XPS) indicated the seepage of dopants in ZnO nanowires by substitution of Zn. Shallow acceptor levels (LiZn, NaZn, KZn) worked as electron trapping centers for intrinsically n-type ZnO nanowires. Free moving electrons caused a leakage current through the nanowires and depleted their piezoelectric potential. Reverse leakage current is a negative factor for piezoelectric nanogenerators. A reduction in reverse leakage current signifies the rise in output voltage. A gradual rise in output voltage has been witnessed which was in accordance with various doping concentrations. K-doped ZnO nanowires have generated voltages of 0.85 V, 1.48 V, and 1.95 V. For Na-doped ZnO nanowires, the voltages were 1.23 V, 1.73 V, and 2.34 V and the voltages yeilded for Li-doped ZnO nanowires were 1.87 V, 2.63 V, and 3.54 V, respectively. Maximum voltage range has been further enhanced by the surface enrichment (oxidized with O2 molecules) of ZnO nanowires. Technique has been opted to mitigate the screening effect during an external stress. After 5 h of oxidation in a sealed chamber at 100 ppm, maximum voltage peaks were pronounced to 2.48 V, 3.19 V, and 4.57 V for K, Na, and Li, respectively. A low-cost, high performance mechanical transducer is proposed for self-powered devices. © 2022 by the authors.
publisher MDPI
issn 2072666X
language English
format Article
accesstype All Open Access; Gold Open Access; Green Open Access
record_format scopus
collection Scopus
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