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Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials

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Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials. / Ivan, M.N.A.S.; Saha, S.; Saleque, A.M. et al.
In: Nano Energy, Vol. 120, 109176, 28.02.2024.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Ivan, MNAS, Saha, S, Saleque, AM, Ahmed, S, Thakur, AK, Bai, G, Miao, Z, Saidur, R & Tsang, YH 2024, 'Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials', Nano Energy, vol. 120, 109176. https://doi.org/10.1016/j.nanoen.2023.109176

APA

Ivan, M. N. A. S., Saha, S., Saleque, A. M., Ahmed, S., Thakur, A. K., Bai, G., Miao, Z., Saidur, R., & Tsang, Y. H. (2024). Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials. Nano Energy, 120, Article 109176. https://doi.org/10.1016/j.nanoen.2023.109176

Vancouver

Ivan MNAS, Saha S, Saleque AM, Ahmed S, Thakur AK, Bai G et al. Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials. Nano Energy. 2024 Feb 28;120:109176. Epub 2023 Dec 13. doi: 10.1016/j.nanoen.2023.109176

Author

Ivan, M.N.A.S. ; Saha, S. ; Saleque, A.M. et al. / Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials. In: Nano Energy. 2024 ; Vol. 120.

Bibtex

@article{42e5dcee57a348959a83592eed4d5099,
title = "Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials",
abstract = "The pressing concern of escalating water scarcity has spurred the creation of advanced technologies, such as interfacial solar steam generation (ISSG), to tackle the challenge. ISSG employs solar energy for efficient water desalination and purification. This comprehensive review delves into various aspects of ISSG, primarily focusing on elucidating its mechanisms, optimizing substrate materials, implementing thermal management strategies, and exploring applications. The study dissects the intricate mechanism of ISSG, highlighting photothermal behaviors across different materials, including the significant role of nanoparticles in vapor generation. The impact of substrate composition and shape on solar evaporation efficiency is investigated, with multi-surface evaporators considered for environmental energy harnessing. To enhance performance, thermal management strategies, including innovative water transport paths for improved heat distribution, are assessed. Addressing key challenges like salt accumulation, biofouling, corrosion, and oil fouling, the review offers insights for issue mitigation. Practically, ISSG is spotlighted for its role in seawater desalination, wastewater treatment (e.g., dye and heavy metal removal), oil-water separation, and sterilization, extending its relevance across industries and healthcare. By comprehensively examining ISSG's mechanisms, substrate considerations, thermal strategies, and applications, this review advances its implementation as a transformative solution for global water challenges.",
author = "M.N.A.S. Ivan and S. Saha and A.M. Saleque and S. Ahmed and A.K. Thakur and G. Bai and Z. Miao and R. Saidur and Y.H. Tsang",
year = "2024",
month = feb,
day = "28",
doi = "10.1016/j.nanoen.2023.109176",
language = "English",
volume = "120",
journal = "Nano Energy",
issn = "2211-2855",
publisher = "Elsevier BV",

}

RIS

TY - JOUR

T1 - Progress in interfacial solar steam generation using low-dimensional and biomass-derived materials

AU - Ivan, M.N.A.S.

AU - Saha, S.

AU - Saleque, A.M.

AU - Ahmed, S.

AU - Thakur, A.K.

AU - Bai, G.

AU - Miao, Z.

AU - Saidur, R.

AU - Tsang, Y.H.

PY - 2024/2/28

Y1 - 2024/2/28

N2 - The pressing concern of escalating water scarcity has spurred the creation of advanced technologies, such as interfacial solar steam generation (ISSG), to tackle the challenge. ISSG employs solar energy for efficient water desalination and purification. This comprehensive review delves into various aspects of ISSG, primarily focusing on elucidating its mechanisms, optimizing substrate materials, implementing thermal management strategies, and exploring applications. The study dissects the intricate mechanism of ISSG, highlighting photothermal behaviors across different materials, including the significant role of nanoparticles in vapor generation. The impact of substrate composition and shape on solar evaporation efficiency is investigated, with multi-surface evaporators considered for environmental energy harnessing. To enhance performance, thermal management strategies, including innovative water transport paths for improved heat distribution, are assessed. Addressing key challenges like salt accumulation, biofouling, corrosion, and oil fouling, the review offers insights for issue mitigation. Practically, ISSG is spotlighted for its role in seawater desalination, wastewater treatment (e.g., dye and heavy metal removal), oil-water separation, and sterilization, extending its relevance across industries and healthcare. By comprehensively examining ISSG's mechanisms, substrate considerations, thermal strategies, and applications, this review advances its implementation as a transformative solution for global water challenges.

AB - The pressing concern of escalating water scarcity has spurred the creation of advanced technologies, such as interfacial solar steam generation (ISSG), to tackle the challenge. ISSG employs solar energy for efficient water desalination and purification. This comprehensive review delves into various aspects of ISSG, primarily focusing on elucidating its mechanisms, optimizing substrate materials, implementing thermal management strategies, and exploring applications. The study dissects the intricate mechanism of ISSG, highlighting photothermal behaviors across different materials, including the significant role of nanoparticles in vapor generation. The impact of substrate composition and shape on solar evaporation efficiency is investigated, with multi-surface evaporators considered for environmental energy harnessing. To enhance performance, thermal management strategies, including innovative water transport paths for improved heat distribution, are assessed. Addressing key challenges like salt accumulation, biofouling, corrosion, and oil fouling, the review offers insights for issue mitigation. Practically, ISSG is spotlighted for its role in seawater desalination, wastewater treatment (e.g., dye and heavy metal removal), oil-water separation, and sterilization, extending its relevance across industries and healthcare. By comprehensively examining ISSG's mechanisms, substrate considerations, thermal strategies, and applications, this review advances its implementation as a transformative solution for global water challenges.

U2 - 10.1016/j.nanoen.2023.109176

DO - 10.1016/j.nanoen.2023.109176

M3 - Journal article

VL - 120

JO - Nano Energy

JF - Nano Energy

SN - 2211-2855

M1 - 109176

ER -