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Natural Cellulose Fiber-Derived Photothermal Aerogel for Efficient and Sustainable Solar Desalination
被引:11
|作者:
Nguyen, Hoang Giang
[1
,2
]
Nguyen, Thi An Hang
[1
]
Do, Danh Bich
[3
]
Pham, Xuan Nui
[4
]
Nguyen, Tuan Hong
[5
]
Nghiem, Ha Lien Thi
[6
]
Nguyen, Minh Viet
[7
]
Pham, Tien Thanh
[1
]
机构:
[1] Vietnam Natl Univ, Vietnam Japan Univ VJU, Hanoi 100000, Vietnam
[2] Vietnam Atom Energy Inst, Inst Nucl Sci & Technol, Environm Radioact Monitoring & Impact Assessment C, Hanoi 100000, Vietnam
[3] Hanoi Natl Univ Educ, Fac Phys, Hanoi 100000, Vietnam
[4] Hanoi Univ Min & Geol, Dept Chem Engn, Hanoi 100000, Vietnam
[5] Vietnam Acad Sci & Technol VAST, Ctr High Technol Dev, Hanoi 100000, Vietnam
[6] Vietnam Acad Sci & Technol, Inst Phys, Hanoi 100000, Vietnam
[7] VNU Univ Sci, Fac Chem, VNU Key Lab Adv Mat Green Growth, Hanoi 100000, Vietnam
来源:
关键词:
GENERATION;
D O I:
10.1021/acs.langmuir.3c00297
中图分类号:
O6 [化学];
学科分类号:
0703 ;
摘要:
Aerogels are becoming a promising platform to fabricate photothermal materials for use in solar steam generation (SSG), which have remarkable application potential in solar desalination, due to their excellent thermal management, salt resistance, and considerable water evaporation rate. In this work, a novel photothermal material is fabricated by forming a suspension between sugarcane bagasse fibers (SBF) and poly(vinyl alcohol), tannic acid (TA), and Fe3+ solutions via hydrogen bonds of hydroxyl groups. After freeze drying, the fabricated SBF aerogel-based photothermal (SBFAP) material possesses a 3D interconnected porous microstructure, which could enhance water transportation ability, reduce thermal conductivity, and quickly dissolve salt crystals on the SBFAP surface. Thanks to the formation of micro/nanosized complexes between TA and Fe3+ ions on the SBFAP material, the SBFAP exhibits high light capture and water evaporation rate (2.28 kg m-2 h-1). In particular, due to strong hydrogen bonding and the SBF, the SBFAP material is reinforced, thereby exhibiting excellent structural stability in seawater. Moreover, the high salt tolerance of SBFAP favors its high desalination performance for at least 76 days of continuous evaporation under actual conditions. This research paves the way for the fabrication of natural cellulose fiber-based photothermal materials for application in solar desalination.
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页码:6780 / 6793
页数:14
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