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Controlling internal nutrients loading at low temperature using oxygen-loading zeolite and submerged macrophytes enhances environmental resilience to subsequent high temperature.

Authors :
Wei, Guining
Xu, Jiani
Yang, Bing
Li, Wei
He, Yixin
Tang, Bingran
Yang, Yongchuan
Cai, Ran
Miao, Xiaojun
Liu, Mengzi
Li, Hong
Wang, Ruilin
Source :
Environmental Research. Aug2023:Part 1, Vol. 231, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Nutrients releasing from anoxic sediment can be enhanced in summer because the dissolved oxygen (DO) consumption, nitrogen (N) and phosphorus (P) migration are susceptible to temperature. Herein, we proposed a method to hinder the aquatic environmental deterioration in warm seasons through consecutive application of oxygen- and lanthanum-modified zeolite (LOZ) and submerged macrophytes (V. natans) at low temperature scenario (5 °C, with depleted DO in water), and the effect was examined with drastic increasing the ambient temperature to 30 °C. The investigation was conducted in a microcosm scale including sediment cores (with a diameter of 11 cm, height of 10 cm) and overlying water (with depth of 35 cm). During the 60 days experiment, application of LOZ at 5 °C facilitated slower releasing and diffusion of oxygen from LOZ and the growth of V. natans. Thereby, when the temperature was increased to 30 °C and maintained for 35 days, the DO reached 10.01 mg/L, and the release of P and N from the sediment was reduced by 86% and 92%, respectively. This was achieved from the joint efforts of adsorption, biological conversion, chemical inactivation, and assimilation. Also, the LOZ inhibited 80% N 2 O, 75% CH 4 , and 70% CO 2 emissions primary by promoting V. natans growth and reshaping microbiota. Meanwhile, the colonization of V. natans benefited the sustainable improvement in the water quality. Our results addressed the time that the remediation of anoxic sediment can be applied. [Display omitted] • Oxygen release from zeolites was extended by LOZ capping at low-temperature. • DO improvement and nutrients reduction by LOZ favored V. natans growth. • LOZ and V. natans reduced sediment N and P through adsorption and conversion. • LOZ promoted sustainable improvement in water quality by reshaping microbiota. • Oxygen-rich and self-organized ecosystem effectively reduced GHG emissions. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00139351
Volume :
231
Database :
Academic Search Index
Journal :
Environmental Research
Publication Type :
Academic Journal
Accession number :
164301492
Full Text :
https://doi.org/10.1016/j.envres.2023.116101