Cargando…

Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions

Desalination by solar steam generation (SSG) system is a green technology to produce pure water, which can address the issue of water scarcity. A novel photothermal material for the SSG system was fabricated by immersing bacterial cellulose (BC) sequentially into tannic acid (TA) and iron(iii) (Fe(3...

Descripción completa

Detalles Bibliográficos
Autores principales: Nguyen, Thi Kieu Trang, Dao, Quang Khai, Tanaka, Daisuke, Nghiem, Lien Ha Thi, Nguyen, Minh Viet, Nguyen, Zoom Hoang, Pham, Tien Thanh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041557/
https://www.ncbi.nlm.nih.gov/pubmed/35496888
http://dx.doi.org/10.1039/d1ra05558e
_version_ 1784694551471980544
author Nguyen, Thi Kieu Trang
Dao, Quang Khai
Tanaka, Daisuke
Nghiem, Lien Ha Thi
Nguyen, Minh Viet
Nguyen, Zoom Hoang
Pham, Tien Thanh
author_facet Nguyen, Thi Kieu Trang
Dao, Quang Khai
Tanaka, Daisuke
Nghiem, Lien Ha Thi
Nguyen, Minh Viet
Nguyen, Zoom Hoang
Pham, Tien Thanh
author_sort Nguyen, Thi Kieu Trang
collection PubMed
description Desalination by solar steam generation (SSG) system is a green technology to produce pure water, which can address the issue of water scarcity. A novel photothermal material for the SSG system was fabricated by immersing bacterial cellulose (BC) sequentially into tannic acid (TA) and iron(iii) (Fe(3+)) solutions. Surface analysis of the resulting BC–TA–Fe(3+) (BTF) material showed that coordination nanocomplexes between Fe(3+) and hydroxyl groups of TA were formed on the surface of cellulose nanofibers. BTF material exhibited high sunlight absorption (∼95%), hydrophilic, self-cleaning properties, and excellent structural stability. SSG systems based on BTF had an evaporation efficiency of 91% and an evaporation rate of 1.56 kg m(−2) h(−1) under 1 sun illumination. Then, an efficient desalination device based on the larger-scale BTF material was fabricated to produce freshwater, the amount of freshwater per day was 5.6 kg m(−2) on a sunny day. BTF material, thus, showed great potential in seawater desalination applications along with simple, versatile, scalable, and affordable fabrication methods.
format Online
Article
Text
id pubmed-9041557
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90415572022-04-28 Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions Nguyen, Thi Kieu Trang Dao, Quang Khai Tanaka, Daisuke Nghiem, Lien Ha Thi Nguyen, Minh Viet Nguyen, Zoom Hoang Pham, Tien Thanh RSC Adv Chemistry Desalination by solar steam generation (SSG) system is a green technology to produce pure water, which can address the issue of water scarcity. A novel photothermal material for the SSG system was fabricated by immersing bacterial cellulose (BC) sequentially into tannic acid (TA) and iron(iii) (Fe(3+)) solutions. Surface analysis of the resulting BC–TA–Fe(3+) (BTF) material showed that coordination nanocomplexes between Fe(3+) and hydroxyl groups of TA were formed on the surface of cellulose nanofibers. BTF material exhibited high sunlight absorption (∼95%), hydrophilic, self-cleaning properties, and excellent structural stability. SSG systems based on BTF had an evaporation efficiency of 91% and an evaporation rate of 1.56 kg m(−2) h(−1) under 1 sun illumination. Then, an efficient desalination device based on the larger-scale BTF material was fabricated to produce freshwater, the amount of freshwater per day was 5.6 kg m(−2) on a sunny day. BTF material, thus, showed great potential in seawater desalination applications along with simple, versatile, scalable, and affordable fabrication methods. The Royal Society of Chemistry 2021-09-24 /pmc/articles/PMC9041557/ /pubmed/35496888 http://dx.doi.org/10.1039/d1ra05558e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Nguyen, Thi Kieu Trang
Dao, Quang Khai
Tanaka, Daisuke
Nghiem, Lien Ha Thi
Nguyen, Minh Viet
Nguyen, Zoom Hoang
Pham, Tien Thanh
Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions
title Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions
title_full Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions
title_fullStr Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions
title_full_unstemmed Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions
title_short Flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions
title_sort flexible, affordable and environmentally sustainable solar vapor generation based on ferric tannate/bacterial cellulose composite for efficient desalination solutions
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041557/
https://www.ncbi.nlm.nih.gov/pubmed/35496888
http://dx.doi.org/10.1039/d1ra05558e
work_keys_str_mv AT nguyenthikieutrang flexibleaffordableandenvironmentallysustainablesolarvaporgenerationbasedonferrictannatebacterialcellulosecompositeforefficientdesalinationsolutions
AT daoquangkhai flexibleaffordableandenvironmentallysustainablesolarvaporgenerationbasedonferrictannatebacterialcellulosecompositeforefficientdesalinationsolutions
AT tanakadaisuke flexibleaffordableandenvironmentallysustainablesolarvaporgenerationbasedonferrictannatebacterialcellulosecompositeforefficientdesalinationsolutions
AT nghiemlienhathi flexibleaffordableandenvironmentallysustainablesolarvaporgenerationbasedonferrictannatebacterialcellulosecompositeforefficientdesalinationsolutions
AT nguyenminhviet flexibleaffordableandenvironmentallysustainablesolarvaporgenerationbasedonferrictannatebacterialcellulosecompositeforefficientdesalinationsolutions
AT nguyenzoomhoang flexibleaffordableandenvironmentallysustainablesolarvaporgenerationbasedonferrictannatebacterialcellulosecompositeforefficientdesalinationsolutions
AT phamtienthanh flexibleaffordableandenvironmentallysustainablesolarvaporgenerationbasedonferrictannatebacterialcellulosecompositeforefficientdesalinationsolutions