Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification

Recently, solar steam generation (SSG) has emerged as a promising and sustainable technology for addressing global water scarcity by efficiently converting solar energy to produce clean water. Carbonaceous materials, primarily sourced from biomass-based, have attracted significant attention due to t...

وصف كامل

التفاصيل البيبلوغرافية
الحاوية / القاعدة:SEPARATION AND PURIFICATION TECHNOLOGY
المؤلفون الرئيسيون: Liow, Jo-Ey; Lim, Kok-Loong; Goh, Jin He; Ong, Wee-Jun; Khiew, Poi Sim; Jani, Nur Aimi; Chiu, Wee Siong; Tan, Swee-Tiam; Haw, Choon-Yian
التنسيق: مقال
اللغة:English
منشور في: ELSEVIER 2025
الموضوعات:
الوصول للمادة أونلاين:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001442383800001
author Liow
Jo-Ey; Lim
Kok-Loong; Goh
Jin He; Ong
Wee-Jun; Khiew
Poi Sim; Jani
Nur Aimi; Chiu
Wee Siong; Tan
Swee-Tiam; Haw
Choon-Yian
spellingShingle Liow
Jo-Ey; Lim
Kok-Loong; Goh
Jin He; Ong
Wee-Jun; Khiew
Poi Sim; Jani
Nur Aimi; Chiu
Wee Siong; Tan
Swee-Tiam; Haw
Choon-Yian
Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
Engineering
author_facet Liow
Jo-Ey; Lim
Kok-Loong; Goh
Jin He; Ong
Wee-Jun; Khiew
Poi Sim; Jani
Nur Aimi; Chiu
Wee Siong; Tan
Swee-Tiam; Haw
Choon-Yian
author_sort Liow
spelling Liow, Jo-Ey; Lim, Kok-Loong; Goh, Jin He; Ong, Wee-Jun; Khiew, Poi Sim; Jani, Nur Aimi; Chiu, Wee Siong; Tan, Swee-Tiam; Haw, Choon-Yian
Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
SEPARATION AND PURIFICATION TECHNOLOGY
English
Article
Recently, solar steam generation (SSG) has emerged as a promising and sustainable technology for addressing global water scarcity by efficiently converting solar energy to produce clean water. Carbonaceous materials, primarily sourced from biomass-based, have attracted significant attention due to their sustainable use of natural resources. However, biomass-based materials are easily mildewed during prolonged immersion and the carbonization process can significantly alter the natural hydrophilic properties of biomass. Herein, a novel approach that utilizes the integration of zinc oxide (ZnO) on carbonized oil palm fiber (ZnO-CF) is developed in this study to investigate their combined synergistic effect. Through a cost-effective hydrothermal route, a composite photothermal material with efficient light absorption and water transport properties is successfully synthesized. Benefiting from the synergistic effect of ZnO with CF, the evaporation rate and efficiency of ZnO-CF are reported to be 1.739 kg m-2h- 1 and 98.96 %, respectively, under 1 sun illumination. Additionally, ZnO-CF demonstrated excellent desalination and bactericidal properties in treating lake water and seawater, with the additional feature of merit in sustaining self-cleaning ability for crystalline salt due to its surface wettability in the absence of light. These versatile properties make ZnO-CF a favorable solution for biomass waste upcycling from the oil palm industry, thus contributing to sustainable water desalination technologies.
ELSEVIER
1383-5866
1873-3794
2025
364

10.1016/j.seppur.2025.132359
Engineering

WOS:001442383800001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001442383800001
title Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
title_short Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
title_full Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
title_fullStr Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
title_full_unstemmed Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
title_sort Synergistic ZnO Nanoflowers Anchored Carbonized Palm Fiber for Advanced Photothermal Water Desalination and Purification
container_title SEPARATION AND PURIFICATION TECHNOLOGY
language English
format Article
description Recently, solar steam generation (SSG) has emerged as a promising and sustainable technology for addressing global water scarcity by efficiently converting solar energy to produce clean water. Carbonaceous materials, primarily sourced from biomass-based, have attracted significant attention due to their sustainable use of natural resources. However, biomass-based materials are easily mildewed during prolonged immersion and the carbonization process can significantly alter the natural hydrophilic properties of biomass. Herein, a novel approach that utilizes the integration of zinc oxide (ZnO) on carbonized oil palm fiber (ZnO-CF) is developed in this study to investigate their combined synergistic effect. Through a cost-effective hydrothermal route, a composite photothermal material with efficient light absorption and water transport properties is successfully synthesized. Benefiting from the synergistic effect of ZnO with CF, the evaporation rate and efficiency of ZnO-CF are reported to be 1.739 kg m-2h- 1 and 98.96 %, respectively, under 1 sun illumination. Additionally, ZnO-CF demonstrated excellent desalination and bactericidal properties in treating lake water and seawater, with the additional feature of merit in sustaining self-cleaning ability for crystalline salt due to its surface wettability in the absence of light. These versatile properties make ZnO-CF a favorable solution for biomass waste upcycling from the oil palm industry, thus contributing to sustainable water desalination technologies.
publisher ELSEVIER
issn 1383-5866
1873-3794
publishDate 2025
container_volume 364
container_issue
doi_str_mv 10.1016/j.seppur.2025.132359
topic Engineering
topic_facet Engineering
accesstype
id WOS:001442383800001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001442383800001
record_format wos
collection Web of Science (WoS)
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