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Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate

At low temperature, plants wither and microbial activities decrease, leading to a decline in the pollutant-treatment performance of constructed wetlands (CWs). In this study, vertical flow CWs (VFCWs) with birnessite (Mn oxides)-coated sand (Mn-CWs) were developed to investigate the pollutant remova...

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Autores principales: Zhang, Ning, Yang, Yixiao, Huang, Lihua, Xie, Huijun, Hu, Zhen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9075035/
https://www.ncbi.nlm.nih.gov/pubmed/35540576
http://dx.doi.org/10.1039/c9ra07364g
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author Zhang, Ning
Yang, Yixiao
Huang, Lihua
Xie, Huijun
Hu, Zhen
author_facet Zhang, Ning
Yang, Yixiao
Huang, Lihua
Xie, Huijun
Hu, Zhen
author_sort Zhang, Ning
collection PubMed
description At low temperature, plants wither and microbial activities decrease, leading to a decline in the pollutant-treatment performance of constructed wetlands (CWs). In this study, vertical flow CWs (VFCWs) with birnessite (Mn oxides)-coated sand (Mn-CWs) were developed to investigate the pollutant removal performance and mechanism in a cold climate. The results showed that the average removal efficiencies for NH(4)–N, NO(3)–N, TN, and TP were 73.81%, 90.66%, 82.44%, and 57.89% in Mn-CWs, respectively, while the average removal efficiencies for NH(4)–N, NO(3)–N, TN, and TP were 29.07%, 90.40%, 62.80%, and 26.32% in the control, respectively. Mn-CWs enhanced microbial denitrification and matrix storage, as well as inhibited P release in Mn-CWs at low temperature. According to GC-MS analysis of the organic compounds, the Mn-CWs matrix contained much more short-chain volatile organic compounds, such as carboxylic acid derivatives, while the control matrix had more ethyl acetate. The absolute quantities of bacterial 16S rRNA, amoA, narG, nirS, and nosZ were significantly higher than the control at 20 cm height from the bottom (p > 0.05). Illumina high-throughput sequencing analysis revealed that the relative abundances of nitrifying and denitrifying bacteria were both higher in Mn-CWs than that of the control. CWs filled with birnessite-coated sand represent an innovative approach for improving nutrient removal performance in cold climates through chemical absorption and microbial transformation.
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spelling pubmed-90750352022-05-09 Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate Zhang, Ning Yang, Yixiao Huang, Lihua Xie, Huijun Hu, Zhen RSC Adv Chemistry At low temperature, plants wither and microbial activities decrease, leading to a decline in the pollutant-treatment performance of constructed wetlands (CWs). In this study, vertical flow CWs (VFCWs) with birnessite (Mn oxides)-coated sand (Mn-CWs) were developed to investigate the pollutant removal performance and mechanism in a cold climate. The results showed that the average removal efficiencies for NH(4)–N, NO(3)–N, TN, and TP were 73.81%, 90.66%, 82.44%, and 57.89% in Mn-CWs, respectively, while the average removal efficiencies for NH(4)–N, NO(3)–N, TN, and TP were 29.07%, 90.40%, 62.80%, and 26.32% in the control, respectively. Mn-CWs enhanced microbial denitrification and matrix storage, as well as inhibited P release in Mn-CWs at low temperature. According to GC-MS analysis of the organic compounds, the Mn-CWs matrix contained much more short-chain volatile organic compounds, such as carboxylic acid derivatives, while the control matrix had more ethyl acetate. The absolute quantities of bacterial 16S rRNA, amoA, narG, nirS, and nosZ were significantly higher than the control at 20 cm height from the bottom (p > 0.05). Illumina high-throughput sequencing analysis revealed that the relative abundances of nitrifying and denitrifying bacteria were both higher in Mn-CWs than that of the control. CWs filled with birnessite-coated sand represent an innovative approach for improving nutrient removal performance in cold climates through chemical absorption and microbial transformation. The Royal Society of Chemistry 2019-11-04 /pmc/articles/PMC9075035/ /pubmed/35540576 http://dx.doi.org/10.1039/c9ra07364g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Ning
Yang, Yixiao
Huang, Lihua
Xie, Huijun
Hu, Zhen
Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate
title Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate
title_full Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate
title_fullStr Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate
title_full_unstemmed Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate
title_short Birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate
title_sort birnessite-coated sand filled vertical flow constructed wetlands improved nutrients removal in a cold climate
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9075035/
https://www.ncbi.nlm.nih.gov/pubmed/35540576
http://dx.doi.org/10.1039/c9ra07364g
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