{"type": "FeatureCollection", "features": [{"id": "10.1007/s11356-024-33934-2", "type": "Feature", "geometry": null, "properties": {"updated": "2026-08-25T16:14:58Z", "type": "Journal Article", "created": "2024-06-19", "title": "Macrophyte assisted phytoremediation and toxicological profiling of metal(loid)s polluted water is influenced by hydraulic retention time", "description": "Abstract<p>The present study reports findings related to the treatment of polluted groundwater using macrophyte-assisted phytoremediation. The potential of three macrophyte species (Phragmites australis, Scirpus holoschoenus, and Typha angustifolia) to tolerate exposure to multi-metal(loid) polluted groundwater was first evaluated in mesocosms for 7- and 14-day batch testing. In the 7-day batch test, the polluted water was completely replaced\uffc2\uffa0and renewed after 7\uffc2\uffa0days, while for\uffc2\uffa014\uffc2\uffa0days exposure, the same polluted water, added in the first week, was maintained. The initial biochemical screening\uffc2\uffa0results of macrophytes indicated that the selected plants were more tolerant to the provided conditions with 14\uffc2\uffa0days of exposure. Based on these findings, the plants were exposed to HRT regimes of 15 and 30\uffc2\uffa0days. The results showed that P. australis and S. holoschoenus performed better than T. angustifolia, in terms of metal(loid) accumulation and removal, biomass production, and toxicity reduction. In addition, the translocation and compartmentalization of metal(loid)s were dose-dependent. At the 30-day loading rate (higher HRT), below-ground phytostabilization was greater than phytoaccumulation, whereas at the 15-day loading rate (lower HRT), below- and above-ground phytoaccumulation was the dominant metal(loid) removal mechanism. However, higher levels of toxicity were noted in the water at the 15-day loading rate. Overall, this\uffc2\uffa0study provides valuable insights for macrophyte-assisted phytoremediation of polluted (ground)water streams that can help to improve the design and implementation of phytoremediation systems.</p", "keywords": ["Qu\u00edmica agr\u00edcola", "Bioqu\u00edmica", "Toxicity reduction", "15. Life on land", "Biochemistry", "6. Clean water", "Phytoremediation", "Macrophyte", "Agricultural chemistry", "13. Climate action", "Metal and metalloid contamination", "Phytostabilization", "Wetland mesocosm", "Hydraulic retention time"], "contacts": [{"organization": "Khan, Aqib Hassan Ali, Soto-Ca\u00f1as, Alberto, Rad, Carlos, Curiel-Alegre, Sandra, Rumbo, Carlos, Velasco Arroyo, Blanca, de Wilde, Herwig, P\u00e9rez-de-Mora, Alfredo, Martel-Mart\u00edn, Sonia, Barros, Roc\u00edo,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10.1007/s11356-024-33934-2"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Environmental%20Science%20and%20Pollution%20Research", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1007/s11356-024-33934-2", "name": "item", "description": "10.1007/s11356-024-33934-2", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1007/s11356-024-33934-2"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2024-01-08T00:00:00Z"}}, {"id": "10.1016/j.biortech.2019.122033", "type": "Feature", "geometry": null, "properties": {"updated": "2026-08-25T16:15:24Z", "type": "Journal Article", "created": "2019-08-18", "title": "High rate continuous biohydrogen production by hyperthermophilic Thermotoga neapolitana", "description": "This study focused on continuous-flow hydrogen production by Thermotoga neapolitana at a hydraulic retention time (HRT) decreasing from 24 to 5\u202fh. At each HRT reduction, the hydrogen yield (HY) immediately dropped, but recovered during prolonged cultivation at constant HRT. The final HY in each operating period decreased from 3.4 (\u00b10.1) to 2.0 (\u00b10.0) mol H2/mol glucose when reducing the HRT from 24 to 7\u202fh. Simultaneously, the hydrogen production rate (HPR) and the liquid phase hydrogen concentration (H2aq) increased from 82 (\u00b11) to 192 (\u00b14) mL/L/h and from 9.1 (\u00b10.3) to 15.6 (\u00b10.7) mL/L, respectively. Additionally, the effluent glucose concentration increased from 2.1 (\u00b10.1) to above 10\u202fmM. Recirculating H2-rich biogas prevented the supersaturation of H2aq reaching a value of 9.3 (\u00b10.7) mL/L, resulting in complete glucose consumption and the highest HPR of 277\u202fmL/L/h at an HRT of 5\u202fh.", "keywords": ["0211 other engineering and technologies", "02 engineering and technology", "Acetic acid", "Archaea", "01 natural sciences", "7. Clean energy", "Continuous-flow dark fermentation", "Thermotoga neapolitana", "Acetic acid; Continuous-flow dark fermentation; Gas recirculation; Hydraulic retention time; Hydrogen; Thermotoga neapolitana", "Bioreactors", "Glucose", "Fermentation", "Gas recirculation", "Hydraulic retention time", "Hydrogen", "0105 earth and related environmental sciences"]}, "links": [{"href": "https://www.iris.unina.it/bitstream/11588/758593/1/Post-print%20for%20IRIS.pdf"}, {"href": "https://doi.org/10.1016/j.biortech.2019.122033"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Bioresource%20Technology", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1016/j.biortech.2019.122033", "name": "item", "description": "10.1016/j.biortech.2019.122033", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1016/j.biortech.2019.122033"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2019-12-01T00:00:00Z"}}, {"id": "10.1016/j.envpol.2017.12.116", "type": "Feature", "geometry": null, "properties": {"updated": "2026-08-25T16:15:36Z", "type": "Journal Article", "created": "2018-01-11", "title": "Pharmaceutical concentration variability at sewage treatment plant outlets dominated by hydrology and other factors", "description": "A study was conducted in which the effluent at four small to medium sized sewage treatment plants (STP) in North Rhine-Westphalia, Germany was monitored for three pharmaceutical compounds (carbamazepine, diclofenac, metoprolol) over a period of four years. Grab sampling and auto sampling campaigns were accomplished with respect to various weather conditions in the catchment area. Flow volumes and hydraulic retention times (HRT) from various sampling dates which provide information on processes causing emission changes were additionally taken into account. Monitoring results showed that concentration scattering in the effluent is related to HRT in the sewage treatment plants. Dilution effects following rain events in the catchment area were analysed for the three investigated substances. Short-term emission changes explained by dilution only could be well determined by the mathematical relation between discharge and concentration, and for carbamazepine to be solely determined by the dilution effects at all HRTs. For metoprolol, a clear decrease in concentrations was observed at HRTs above 80\u202fh, and a significant contribution of biodegradation was supported by independent biodegradation tests. For three out of the four STPs, a decrease in concentrations of diclofenac was observed at hydraulic retention times above 80\u202fh, indicating removal, whereas the relationship between concentration and HRT of the other STP could be explained by dilution only. The study shows that emissions can vary with weather conditions, hampering the assessment of emissions and estimation of concentrations in surface waters from generic removal rates only. Furthermore, it illustrates the importance of HRT of rather stable substances in wastewater treatment.", "keywords": ["Diclofenac", "Sewage", "Dilution effects", "Rain", "0211 other engineering and technologies", "02 engineering and technology", "Wastewater", "Waste Disposal", " Fluid", "01 natural sciences", "6. Clean water", "Sewage treatment plants", "12. Responsible consumption", "Biodegradation", " Environmental", "Carbamazepine", "Pharmaceutical Preparations", "13. 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The potential of three macrophyte species (Phragmites australis, Scirpus holoschoenus, and Typha angustifolia) to tolerate exposure to multi-metal(loid) polluted groundwater was first evaluated in mesocosms for 7- and 14-day batch testing. In the 7-day batch test, the polluted water was completely replaced\uffc2\uffa0and renewed after 7\uffc2\uffa0days, while for\uffc2\uffa014\uffc2\uffa0days exposure, the same polluted water, added in the first week, was maintained. The initial biochemical screening\uffc2\uffa0results of macrophytes indicated that the selected plants were more tolerant to the provided conditions with 14\uffc2\uffa0days of exposure. Based on these findings, the plants were exposed to HRT regimes of 15 and 30\uffc2\uffa0days. The results showed that P. australis and S. holoschoenus performed better than T. angustifolia, in terms of metal(loid) accumulation and removal, biomass production, and toxicity reduction. In addition, the translocation and compartmentalization of metal(loid)s were dose-dependent. At the 30-day loading rate (higher HRT), below-ground phytostabilization was greater than phytoaccumulation, whereas at the 15-day loading rate (lower HRT), below- and above-ground phytoaccumulation was the dominant metal(loid) removal mechanism. However, higher levels of toxicity were noted in the water at the 15-day loading rate. Overall, this\uffc2\uffa0study provides valuable insights for macrophyte-assisted phytoremediation of polluted (ground)water streams that can help to improve the design and implementation of phytoremediation systems.</p", "keywords": ["Qu\u00edmica agr\u00edcola", "Bioqu\u00edmica", "Toxicity reduction", "15. Life on land", "Biochemistry", "Advances in Environmental Biotechnology and Engineering", "6. Clean water", "Phytoremediation", "Macrophyte", "Agricultural chemistry", "13. Climate action", "Metal and metalloid contamination", "Phytostabilization", "Wetland mesocosm", "Hydraulic retention time"]}, "links": [{"href": "https://doi.org/10259/9506"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Environmental%20Science%20and%20Pollution%20Research", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10259/9506", "name": "item", "description": "10259/9506", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10259/9506"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2024-01-08T00:00:00Z"}}], "links": [{"rel": "self", "type": "application/geo+json", "title": "This document as GeoJSON", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Hydraulic+retention+time&f=json", "hreflang": "en-US"}, {"rel": "alternate", "type": "text/html", "title": "This document as HTML", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Hydraulic+retention+time&f=html", "hreflang": "en-US"}, {"rel": "collection", "type": "application/json", "title": "Collection URL", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main", "hreflang": "en-US"}, {"type": "application/geo+json", "rel": "first", "title": "items (first)", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Hydraulic+retention+time&", "hreflang": "en-US"}, {"rel": "last", "type": "application/geo+json", "title": "items (last)", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Hydraulic+retention+time&offset=4", "hreflang": "en-US"}], "numberMatched": 4, "numberReturned": 4, "distributedFeatures": [], "timeStamp": "2026-08-26T14:38:21.860858Z"}