Seasonal assessment of groundwater quality and irrigation suitability using a solar-powered AgNP/activated carbon treatment system in a coastal aquifer

Abstract The increasing water scarcity, groundwater degradation, and climate variability have increased the demand for sustainable groundwater management strategies in arid and semiarid regions. This work presents an integrated framework for groundwater monitoring and irrigation suitability assessment of groundwater from 13 borehole at a university campus in Alexandria, Egypt, under climate change conditions. The developed system was implemented via a field-scale, solar-powered fixed-bed column packed with a green-synthesized silver-nanoparticle/activated-carbon nanocomposite (AgNPs/AC-NC). Groundwater from the 13 wells was sampled over 4 consecutive seasons to investigate the spatial and temporal variations in physicochemical, microbiological, and hydrochemical characteristics before and after treatment. In addition, water quality indices were calculated to assess water suitability for irrigation in accordance with the Food and Agriculture Organization of the United Nations (FAO) guidelines. The preliminary hydrochemical analysis of the raw samples indicated that sodium and bicarbonate ions were the dominant ions, which is typical for the sodium-bicarbonate water type, with elevated salinity, turbidity and dissolved constituents during the warm seasons. The AgNPs/AC-NC treatment resulted in reductions in salinity-related parameters, major dissolved ions, and irrigation hazard indices averaged across all wells and seasons. Most of the physicochemical parameters showed an overall reduction of 30–80%, with the most significant reductions in sulphate (80.3%), alkalinity (71.0%), sodium and potassium (67.4%), nitrate (52.6%), electrical conductivity (54.2%), chloride (53.5%), and total dissolved solids (47.3%). In addition, the potential salinity, residual sodium carbonate and total hardness decreased by 50–72%, and the total and fecal coliform concentrations were < 1 CFU/100 mL in most samples. While most of the parameters were within the FAO irrigation standards, copper, nitrite, acidity and turbidity remained above the standard, suggesting that a dedicated copper removal and polishing step is still needed. Nonetheless, the framework provides a practical, decentralized groundwater treatment and irrigation reuse model that is climate-resilient, making it suitable in water-scarce regions.

Authors

Publication Details

Journal
Scientific Reports
Published
2026-08-24
DOI
https://doi.org/10.1038/s41598-026-66183-z
Primary Topic
Groundwater and Isotope Geochemistry
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Seasonal assessment of groundwater quality and irrigation suitability using a solar-powered AgNP/activated carbon treatment system in a coastal aquifer

Mohamed Y. Omar, Rania A. Ibrahim, Ragaa A. Ahmed, Ebtesam El Bestawy et al.
Scientific Reports
Groundwater and Isotope Geochemistry
article

Seasonal assessment of groundwater quality and irrigation suitability using a solar-powered AgNP/activated carbon treatment system in a coastal aquifer

Mohamed Y. Omar, Rania A. Ibrahim, Ragaa A. Ahmed, Ebtesam El Bestawy, Kareem M. Tonbol
article en

Abstract

Abstract The increasing water scarcity, groundwater degradation, and climate variability have increased the demand for sustainable groundwater management strategies in arid and semiarid regions. This work presents an integrated framework for groundwater monitoring and irrigation suitability assessment of groundwater from 13 borehole at a university campus in Alexandria, Egypt, under climate change conditions. The developed system was implemented via a field-scale, solar-powered fixed-bed column packed with a green-synthesized silver-nanoparticle/activated-carbon nanocomposite (AgNPs/AC-NC). Groundwater from the 13 wells was sampled over 4 consecutive seasons to investigate the spatial and temporal variations in physicochemical, microbiological, and hydrochemical characteristics before and after treatment. In addition, water quality indices were calculated to assess water suitability for irrigation in accordance with the Food and Agriculture Organization of the United Nations (FAO) guidelines. The preliminary hydrochemical analysis of the raw samples indicated that sodium and bicarbonate ions were the dominant ions, which is typical for the sodium-bicarbonate water type, with elevated salinity, turbidity and dissolved constituents during the warm seasons. The AgNPs/AC-NC treatment resulted in reductions in salinity-related parameters, major dissolved ions, and irrigation hazard indices averaged across all wells and seasons. Most of the physicochemical parameters showed an overall reduction of 30–80%, with the most significant reductions in sulphate (80.3%), alkalinity (71.0%), sodium and potassium (67.4%), nitrate (52.6%), electrical conductivity (54.2%), chloride (53.5%), and total dissolved solids (47.3%). In addition, the potential salinity, residual sodium carbonate and total hardness decreased by 50–72%, and the total and fecal coliform concentrations were < 1 CFU/100 mL in most samples. While most of the parameters were within the FAO irrigation standards, copper, nitrite, acidity and turbidity remained above the standard, suggesting that a dedicated copper removal and polishing step is still needed. Nonetheless, the framework provides a practical, decentralized groundwater treatment and irrigation reuse model that is climate-resilient, making it suitable in water-scarce regions.

Scientific ReportsVol. 16(1)
Openalex Percentile: Top 12%
Groundwater and Isotope Geochemistry
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.