Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy

This research aimed to generate electricity from polystyrene waste materials combined with zinc oxide (ZnO) nanomaterials. Developing alternative polystyrene waste materials for generating electricity in triboelectric nanogenerator (TENG) could be beneficial in a circular economy and sustainable dev...

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Published in:MATERIALS TODAY SUSTAINABILITY
Main Authors: Kamaruzaman, Dayana; Mustakim, Nurul Syafiqah Mohamed; Subki, A. Shamsul Rahimi A.; Parimon, Norfarariyanti; Yaakob, Muhammad Kamil; Malek, Mohd Firdaus; Vasimalai, Nagamalai; Abdullah, Mohd Hanapiah; Abu Bakar, Suriani; Ahmad, Mohd Khairul; Thomas, Sabu; Mamat, Mohamad Hafiz
Format: Article
Language:English
Published: ELSEVIER 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001224686400001
author Kamaruzaman
Dayana; Mustakim
Nurul Syafiqah Mohamed; Subki
A. Shamsul Rahimi A.; Parimon
Norfarariyanti; Yaakob
Muhammad Kamil; Malek
Mohd Firdaus; Vasimalai
Nagamalai; Abdullah
Mohd Hanapiah; Abu Bakar
Suriani; Ahmad
Mohd Khairul; Thomas
Sabu; Mamat
Mohamad Hafiz
spellingShingle Kamaruzaman
Dayana; Mustakim
Nurul Syafiqah Mohamed; Subki
A. Shamsul Rahimi A.; Parimon
Norfarariyanti; Yaakob
Muhammad Kamil; Malek
Mohd Firdaus; Vasimalai
Nagamalai; Abdullah
Mohd Hanapiah; Abu Bakar
Suriani; Ahmad
Mohd Khairul; Thomas
Sabu; Mamat
Mohamad Hafiz
Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
Science & Technology - Other Topics; Materials Science
author_facet Kamaruzaman
Dayana; Mustakim
Nurul Syafiqah Mohamed; Subki
A. Shamsul Rahimi A.; Parimon
Norfarariyanti; Yaakob
Muhammad Kamil; Malek
Mohd Firdaus; Vasimalai
Nagamalai; Abdullah
Mohd Hanapiah; Abu Bakar
Suriani; Ahmad
Mohd Khairul; Thomas
Sabu; Mamat
Mohamad Hafiz
author_sort Kamaruzaman
spelling Kamaruzaman, Dayana; Mustakim, Nurul Syafiqah Mohamed; Subki, A. Shamsul Rahimi A.; Parimon, Norfarariyanti; Yaakob, Muhammad Kamil; Malek, Mohd Firdaus; Vasimalai, Nagamalai; Abdullah, Mohd Hanapiah; Abu Bakar, Suriani; Ahmad, Mohd Khairul; Thomas, Sabu; Mamat, Mohamad Hafiz
Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
MATERIALS TODAY SUSTAINABILITY
English
Article
This research aimed to generate electricity from polystyrene waste materials combined with zinc oxide (ZnO) nanomaterials. Developing alternative polystyrene waste materials for generating electricity in triboelectric nanogenerator (TENG) could be beneficial in a circular economy and sustainable development. With the motivation to reduce environmental pollution by using polystyrene waste, a recycled polystyrene-ZnO nanocomposite film (rPS-ZnO NF) was synthesized and served as a triboelectric material for energy harvesting applications. ZnO nanopowder was produced by a low-temperature solution immersion method in conjunction with a simple filmcasting method to prepare the rPS-ZnO NF. The effects of varying amounts of toluene as a solvent medium and the immersion time in stearic acid (SA) solution treatment on the structural properties, wettability behavior, surface morphology, chemical bonding properties, surface characteristics, and TENG performance were investigated. In this work, rPS film, rPS-ZnO NF, and SA-treated rPS-ZnO NF were paired with Kapton film as the opposite triboelectric material in constructing the vertical contact-separation mode TENG. Compared to rPS TENG, the rPS-ZnO TENG exhibited a two-fold enhancement in performance (8.2 V) in output voltage and -4.5 fold enhancement (28.1 mu W/cm2) in power density. Furthermore, following SA treatment, the triboelectric performance further improved, reaching the highest open circuit voltage of -8.8 V and the highest power density of 32.0 mu W/cm2 for repeated 2 N-solenoid tapping force. The hydrophobic behavior was also improved with the highest water contact angle of 134.7 (when the SA treatment immersion time was 1 h). These findings demonstrate that SA-treated rPS-ZnO NF could be a promising candidate for efficient mechanical energy harvesting with high electrical output and excellent surface wettability. This research not only exhibits an excellent output performance of SA-treated rPS-ZnO TENG, but it also sheds new light on the sustainable approach of converting polystyrene waste into energy-harvesting material.
ELSEVIER
2589-2347

2024
26

10.1016/j.mtsust.2024.100726
Science & Technology - Other Topics; Materials Science

WOS:001224686400001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001224686400001
title Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
title_short Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
title_full Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
title_fullStr Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
title_full_unstemmed Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
title_sort Polystyrene Waste-ZnO nanocomposite film for energy harvesting via hydrophobic triboelectric nanogenerator: Transforming waste into energy
container_title MATERIALS TODAY SUSTAINABILITY
language English
format Article
description This research aimed to generate electricity from polystyrene waste materials combined with zinc oxide (ZnO) nanomaterials. Developing alternative polystyrene waste materials for generating electricity in triboelectric nanogenerator (TENG) could be beneficial in a circular economy and sustainable development. With the motivation to reduce environmental pollution by using polystyrene waste, a recycled polystyrene-ZnO nanocomposite film (rPS-ZnO NF) was synthesized and served as a triboelectric material for energy harvesting applications. ZnO nanopowder was produced by a low-temperature solution immersion method in conjunction with a simple filmcasting method to prepare the rPS-ZnO NF. The effects of varying amounts of toluene as a solvent medium and the immersion time in stearic acid (SA) solution treatment on the structural properties, wettability behavior, surface morphology, chemical bonding properties, surface characteristics, and TENG performance were investigated. In this work, rPS film, rPS-ZnO NF, and SA-treated rPS-ZnO NF were paired with Kapton film as the opposite triboelectric material in constructing the vertical contact-separation mode TENG. Compared to rPS TENG, the rPS-ZnO TENG exhibited a two-fold enhancement in performance (8.2 V) in output voltage and -4.5 fold enhancement (28.1 mu W/cm2) in power density. Furthermore, following SA treatment, the triboelectric performance further improved, reaching the highest open circuit voltage of -8.8 V and the highest power density of 32.0 mu W/cm2 for repeated 2 N-solenoid tapping force. The hydrophobic behavior was also improved with the highest water contact angle of 134.7 (when the SA treatment immersion time was 1 h). These findings demonstrate that SA-treated rPS-ZnO NF could be a promising candidate for efficient mechanical energy harvesting with high electrical output and excellent surface wettability. This research not only exhibits an excellent output performance of SA-treated rPS-ZnO TENG, but it also sheds new light on the sustainable approach of converting polystyrene waste into energy-harvesting material.
publisher ELSEVIER
issn 2589-2347

publishDate 2024
container_volume 26
container_issue
doi_str_mv 10.1016/j.mtsust.2024.100726
topic Science & Technology - Other Topics; Materials Science
topic_facet Science & Technology - Other Topics; Materials Science
accesstype
id WOS:001224686400001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001224686400001
record_format wos
collection Web of Science (WoS)
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