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Search Results (141)

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Keywords = Eichhornia crassipes

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23 pages, 3252 KB  
Article
Valorization of Water Hyacinth Biomass as a Soil Amendment: Long-Term Impacts on Soil Properties and Tomato Growth Under Two Water Regimes
by Ignacio Pinheiro, Carla Patinha, Pedro Pato, Carlos Silva, Isabel Lopes and Cátia Venâncio
Sustainability 2026, 18(15), 7700; https://doi.org/10.3390/su18157700 - 29 Jul 2026
Viewed by 231
Abstract
Water hyacinth (Eichhornia crassipes, WH) is a highly invasive aquatic plant. Although its surplus biomass has been proposed as an agricultural amendment, uncertainty remains regarding its safe use. Based on this knowledge gap, two working hypotheses were addressed: (i) WH application [...] Read more.
Water hyacinth (Eichhornia crassipes, WH) is a highly invasive aquatic plant. Although its surplus biomass has been proposed as an agricultural amendment, uncertainty remains regarding its safe use. Based on this knowledge gap, two working hypotheses were addressed: (i) WH application would enhance soil physicochemical and enzymatic attributes, particularly under water stress, and (ii) WH application would stimulate plant growth through nutrient release. To verify this, two WH amendment rates (2.5% and 5% w/w) were evaluated under normal (45%) and severe (22.5%) WHC using tomato (Solanum lycopersicum L.) as a bioindicator. WH incorporation significantly altered soil conditions, inducing progressive acidification and increasing electrical conductivity (EC), particularly at the 5% rate under well-watered conditions, where EC values reached approximately 3000 µS/cm. Although WH amendments increased soil relative humidity owing to the hydrophilic nature of the biomass, these moisture-driven benefits were transient. Acid phosphatase activity increased markedly by day 60 in WH-amended soils, especially at 45% WHC, indicating enhanced microbial activity and phosphorus mineralization associated with organic matter decomposition. Plant responses were strongly driven by water availability, with severe water restrictions consistently limiting germination and growth and potentiating osmoprotectant retention. From day 60 onward, germination and biomass declined markedly in the 5% WH treatment, likely due to the accumulation of salt and osmotic stress arising from the decomposition of biomass. Surviving seedlings in WH-amended soils exhibited increased shoot biomass relative to their roots, suggesting stress-related biomass reallocation. Overall, the results indicate that the direct application of untreated WH biomass at moderate to high rates may generate short-term benefits but may impair long-term plant establishment. Lower application rates (≤2.5% w/w) may offer limited early stage benefits, whereas higher rates pose risks under prolonged exposure, highlighting the importance of dose, water regime, and amendment processing when considering WH valorization for agricultural use. This valorization approach may contribute to incentivizing control of this invasive species while promoting plant waste valorization within circular economy goals. Full article
(This article belongs to the Section Air, Climate Change and Sustainability)
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22 pages, 3121 KB  
Article
The Development of Silver Nanoparticles-Based Colorimetric Uric Acid Detection: An Extension Study of Silver Nanoparticles Extraction from Water Hyacinth (Eichhornia crassipes)
by Fueangfakan Chutrakulwong, Mana Intarasawang and Kheamrutai Thamaphat
Biosensors 2026, 16(8), 409; https://doi.org/10.3390/bios16080409 - 29 Jul 2026
Viewed by 252
Abstract
This work is an extension of our previous work on UV-assisted green synthesis of silver nanoparticles (AgNPs) from water hyacinth leaf extract, which is focused on using their unique biogenic capping layer to mitigate matrix interference in clinical diagnostics. The synthesized AgNPs were [...] Read more.
This work is an extension of our previous work on UV-assisted green synthesis of silver nanoparticles (AgNPs) from water hyacinth leaf extract, which is focused on using their unique biogenic capping layer to mitigate matrix interference in clinical diagnostics. The synthesized AgNPs were evaluated for uric acid (UA) detection and used to fabricate a plasmonic colorimetric biosensing platform. The results show that the biosynthesized AgNPs effectively act as optical signal transducers in an uricase-based enzymatic system, in which the natural capping shield provides excellent electrosteric protection, providing excellent colloidal stability without non-specific aggregation in complex matrices. A linear correlation between absorbance and UA concentration was observed in the range of 100–500 µM (R2 = 0.99). The limit of detection (LOD) calculated by the 3σ/slope approach was 25.89 µM. The sensor showed good repeatability with a relative standard deviation (RSD) below 5%, and stability studies showed that the AgNPs retained more than 90% of their initial response after 14 days. Recovery studies in spiked human serum showed satisfactory accuracy (96.3–103.4%), confirming a high tolerance to endogenous interfering species (e.g., ascorbic acid and glutathione) without pre-purification steps. Importantly, the working range covers clinically relevant uric acid concentrations found in human serum. The obtained results point to the potential of waste-derived green-stabilized AgNPs as a robust plasmonic-based colorimetric biosensing platform for the clinical monitoring of uric acid, successfully combining ecological valorization with high-performance, matrix-tolerant diagnostics. Full article
(This article belongs to the Section Biosensor Materials)
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15 pages, 2337 KB  
Article
Development of a Cr(VI) Treatment System Using Bacterial Cellulose Biomass and Eichhornia crassipes
by Uriel Fernando Carreño Sayago, Vladimir Ballesteros Ballesteros and Angelica Maria Lozano Aguilar
Processes 2026, 14(14), 2325; https://doi.org/10.3390/pr14142325 - 17 Jul 2026
Viewed by 392
Abstract
The indiscriminate discharge of heavy metals into bodies of water leads to the loss of their ecosystem services, affecting adjacent communities. An example of this is the discharge of industrial wastewater into the Tunjuelo River, south of Bogotá, which contains high concentrations of [...] Read more.
The indiscriminate discharge of heavy metals into bodies of water leads to the loss of their ecosystem services, affecting adjacent communities. An example of this is the discharge of industrial wastewater into the Tunjuelo River, south of Bogotá, which contains high concentrations of Cr(VI) and has had serious consequences in recent decades. Therefore, research has focused on the use of contaminant-adsorbing biomass, and a continuous-flow treatment of contaminated water has been tested to remove various heavy metals, such as chromium, mercury, and cadmium, using adsorbent biomasses of E. crassipes and bacterial cellulose. The combination of these biomasses would generate an ideal composite material due to the excellent adsorption capacity of bacterial cellulose and the support provided by the E. crassipes biomass, allowing for reuse through different elution processes. Using adsorption models, designs were developed to ensure adequate treatment of Cr(VI). Using these models, a treatment system was designed with different combinations of these biomasses, in which biomass (a) achieved 23.3 g of Cr(VI) removed per dollar, including the cumulative adsorption capacities, EDTA elutions, and reuses. It was concluded that this treatment system with these two biomasses is ideal for generating alternative treatments for heavy metals, especially Cr(VI). Full article
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27 pages, 2854 KB  
Article
Drying Process Development for Lignocellulosic Water Hyacinth Fibers: Design and Performance Evaluation of an Innovative Dryer Machine for Small-Scale Craft Industry
by Khakam Ma’ruf, Rizal Justian Setiawan, Taufik Akbar, Rheina Khaisa Rhehani Putri, Zaky Ahmad Aditya, Afan Sutopo, Muhamad Yogi and Yu-Tzu Chen
Fibers 2026, 14(7), 86; https://doi.org/10.3390/fib14070086 - 17 Jul 2026
Viewed by 402
Abstract
Water hyacinth (Eichhornia crassipes) is an invasive aquatic plant with high lignocellulosic content, offering potential as a natural fiber resource for craft-based industries. However, its extremely high initial moisture content (≈95%) presents a major challenge in fiber processing, particularly for small-scale [...] Read more.
Water hyacinth (Eichhornia crassipes) is an invasive aquatic plant with high lignocellulosic content, offering potential as a natural fiber resource for craft-based industries. However, its extremely high initial moisture content (≈95%) presents a major challenge in fiber processing, particularly for small-scale industries that rely on traditional sun-drying methods. These methods are highly dependent on weather conditions, prone to contamination, and produce inconsistent fiber quality. This study adopts a research and development (R&D) approach to design and evaluate an innovative dryer machine specifically for water hyacinth fiber processing. The proposed system utilizes LPG-based heating and controlled airflow to achieve stable drying conditions. Experimental results show that the dryer machine can process 10 kg of wet water hyacinth within 280 min, significantly shorter than the approximately four days required for manual drying. The system reduces the moisture content to below 10%, resulting in improved fiber cleanliness, uniformity, and usability. Although the dried mass produced by the machine is slightly lower compared to manual drying, this is attributed to more effective moisture removal, leading to lower residual water content in the final product. Productivity analysis indicates improved operational consistency and higher processing capacity over extended periods (30–180 days), particularly under varying weather conditions. These findings demonstrate that controlled drying technology provides a reliable and efficient solution for lignocellulosic fiber processing in small-scale industries, contributing to improved material utilization and sustainable biomass management. Full article
(This article belongs to the Special Issue Research on Wood and Lignocellulosic Materials)
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17 pages, 2556 KB  
Article
Eggshell-Activated Carbon from Water Hyacinths for Heavy Metal Removal from Wastewater: Isotherm and Kinetic Studies
by Claire Atumanye, Simon Bbumba, Hakimu Nsubuga, Ivan Kiganda, Timothy Omara and Justus Kwetegyeka
J. Xenobiot. 2026, 16(4), 126; https://doi.org/10.3390/jox16040126 - 8 Jul 2026
Viewed by 622
Abstract
Heavy metals (HMs) such as copper (Cu), lead (Pb), cadmium (Cd), chromium (Cr) and zinc (Zn) from industrial activities are discharged into nearby water resources after treatment. In the present study, the potential of utilizing chemically activated carbon derived from water hyacinths as [...] Read more.
Heavy metals (HMs) such as copper (Cu), lead (Pb), cadmium (Cd), chromium (Cr) and zinc (Zn) from industrial activities are discharged into nearby water resources after treatment. In the present study, the potential of utilizing chemically activated carbon derived from water hyacinths as a sustainable and low-cost adsorbent for heavy metal removal from industrial wastewater from the Nakawa industrial area, Uganda was investigated. The measured physicochemical parameters of wastewater (temperature, pH, electrical conductivity, total dissolved solids, turbidity, dissolved oxygen, chlorides and total hardness) varied significantly among the three sampled sites (p < 0.05), except for pH. Similarly, the concentration of the HMs in the samples (0.54 ± 0.04 mg L−1 for Cr to 93.54 ± 0.07 mg L−1 for Pb) varied significantly between sites (p < 0.05), exceeding the maximum permissible limits of Cd, Pb, Cr, Cu and Zn specified in the National Environment Standards for Discharge of Effluent into Water or Land. The water hyacinth biomass was activated using eggshell powder and phosphoric acid, followed by thermal treatment. Characterization using Fourier-transform infrared spectroscopy and scanning electron microscopy confirmed that there was improvement in its surface functionality and porosity post activation. Batch adsorption experiments indicated that optimal removal of the HMs was achieved at pH 4–5, contact time of 90 min, and 1.0 g of adsorbent. Maximum adsorption capacities of Pb, Cd, Cu, Cr and Zn were in the range of 1.04–8.36 mg g−1. Under the optimized conditions, the eggshell-activated carbon derived from water hyacinths had removal efficiencies of 91.2 ± 9.1% (range: 71.3–100%). Adsorption occurred through both monolayer and multilayer coverage, as indicated by the experimental data which fitted well to the Freundlich isotherm (Cd2+, Pb2+, Zn2+ and Cu2+ ions) and Langmuir isotherm model (Cr3+ ions). These results support the potential of water hyacinth-derived activated carbon as an ecofriendly alternative for treating low concentrations of these HMs in industrial wastewater. Full article
(This article belongs to the Section Ecotoxicology)
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15 pages, 2373 KB  
Article
Identification and Transcriptome Resource of the Mite Orthogalumna cf. terebrantis (Acari: Galumnidae) in China
by Menghui Yang, Xiaochuan Ma, Konglin Zhou, Sheng Lin, Jianming Chen and Zhenyue Lin
Curr. Issues Mol. Biol. 2026, 48(6), 619; https://doi.org/10.3390/cimb48060619 - 15 Jun 2026
Viewed by 282
Abstract
The genus Orthogalumna (Oribatida: Galumnidae) has been recognized for its phytophagous associations with aquatic plants, particularly its potential role in the biocontrol of the invasive weed Water hyacinth (Eichhornia crassipes). Despite its ecological significance, this genus remains poorly studied in terms [...] Read more.
The genus Orthogalumna (Oribatida: Galumnidae) has been recognized for its phytophagous associations with aquatic plants, particularly its potential role in the biocontrol of the invasive weed Water hyacinth (Eichhornia crassipes). Despite its ecological significance, this genus remains poorly studied in terms of its micromorphological architecture, phylogenetics, and genomic resources. In this study, we report Orthogalumna cf. terebrantis from China, providing the first comprehensive characterization of an Orthogalumna species by integrating morphology, phylogeny, and transcriptomics. This record represents the first documented occurrence of O. cf. terebrantis in China, pending confirmation by voucher-based morphological comparison and molecular data. This work provides critical microstructural evidence to complement traditional morphological identification and establishes a foundational molecular dataset for future studies on the systematics, comparative genomics, and environmental adaptation of oribatid mites. Full article
(This article belongs to the Section Bioinformatics and Systems Biology)
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22 pages, 4896 KB  
Article
A Sustainable Approach to Paper Production from Eichhornia crassipes to Strengthen the Non-Wood Fiber Industry
by Juan Jurado, Victor Huilcapi, Ivan Suarez and Armando Lopez
Fibers 2026, 14(6), 68; https://doi.org/10.3390/fib14060068 - 8 Jun 2026
Viewed by 863
Abstract
This article proposes a sustainable approach to producing eco-friendly paper from fibers derived from water hyacinth (Eichhornia crassipes), an invasive aquatic species with potential high lignocellulose content. The research evaluated the possibility of using its biomass as a non-wood raw material [...] Read more.
This article proposes a sustainable approach to producing eco-friendly paper from fibers derived from water hyacinth (Eichhornia crassipes), an invasive aquatic species with potential high lignocellulose content. The research evaluated the possibility of using its biomass as a non-wood raw material for papermaking through an industrial-oriented processing framework. About 10 groups of water hyacinth samples were analyzed by separating their components (roots, leaves, and stems) to determine moisture content, dry biomass yield, fiber distribution, and performance in papermaking. Mechanical pulping and mild alkaline treatment with sodium hydroxide were compared to evaluate their effects on fiber behavior and paper quality. The results showed a high moisture content in the biomass, averaging approximately 88%, while the remaining dry matter represented the usable fibrous material fraction. After fiber classification, it was revealed that the long fibers predominated over the short fibers and the fine fibers (waste), favoring the hydrogen bonding and structural anchoring during sheet formation. Mechanical quality analyses were conducted using the Corrugating Medium Test (CMT), Concora Crush Test (CCT), Ring Crush Test (RCT), and Short Compression Test (SCT). Untreated water hyacinth paper demonstrated mechanical properties comparable to those of an industrial reference paper, including consistent compression resistance and corrugating performance. In contrast, the alkaline-treated sample showed greater structural uniformity but lower mechanical strength due to fiber fragmentation and increased fine production. Overall, the findings showed that Eichhornia crassipes represents a viable and sustainable alternative to non-wood fibers for paper production, offering potential environmental benefits by serving as an invasive species and reducing dependence on wood-based raw materials. Full article
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23 pages, 2295 KB  
Article
Quantifying Seasonal Shoreline Distribution of Water Hyacinth (Eichhornia crassipes) in Winam Gulf, Lake Victoria
by Satyam Shah
Limnol. Rev. 2026, 26(2), 24; https://doi.org/10.3390/limnolrev26020024 - 6 Jun 2026
Viewed by 637
Abstract
Water hyacinth (Eichhornia crassipes) is among the world’s most invasive aquatic macrophytes, yet quantitative models of shoreline preference remain absent for Lake Victoria. This study developed a distance-based quantitative framework for spatial distribution and decay modelling to quantify seasonal nearshore accumulation [...] Read more.
Water hyacinth (Eichhornia crassipes) is among the world’s most invasive aquatic macrophytes, yet quantitative models of shoreline preference remain absent for Lake Victoria. This study developed a distance-based quantitative framework for spatial distribution and decay modelling to quantify seasonal nearshore accumulation dynamics in Winam Gulf, Kenya, using Sentinel-2 imagery. A Support Vector Machine classifier with polygon-mean feature extraction achieved 94–96% accuracy, supported by strong spectral separability (Jeffries–Matusita distance > 1.9 in six bands). During peak dry season, water hyacinth covered 405.81 km2 (27.1% of gulf area) and occurred significantly closer to shore than open water (mean preference = 687.9 m; 95% CI: 616.6–753.7 m; p < 0.001). Water hyacinth was 3.10 times more likely than open water to occur within 100 m of shoreline, with 48% of biomass concentrated within 2 km. A power-law decay model of odds ratio with shoreline distance provided superior fit (R2 = 0.870, F = 10.06, p = 0.047) compared to exponential decay (R2 = 0.477, p = 0.378). Critically, pronounced nearshore preference occurred only during dry-season conditions (+687.9 m to +1946.6 m), while wet–dry transition periods showed no significant preference (−124.2 m; p = 1.00), supporting wind-driven Stokes drift as the dominant transport mechanism and enabling seasonal prioritization of nearshore management interventions. Full article
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15 pages, 563 KB  
Article
Bioaugmented Phytoremediation of Heavy Metals in Petrochemical Wastewater Using Eichhornia crassipes
by Xudong Lan, Rabiya Sheraz, Waqar-Un-Nisa, Songhao Zhang, Jia Ouyang, Aansa Rukya Saleem, Jawaria Abid, Habib Ullah, Yilina Bai, Rui Ma, Shaohong You, Abubakr M. Idris and Guo Yu
Toxics 2026, 14(6), 493; https://doi.org/10.3390/toxics14060493 - 5 Jun 2026
Viewed by 654
Abstract
This study investigated the potential of microbial-assisted phytoremediation using Eichhornia crassipes (water hyacinth) to reduce heavy metal and salinity pollution in produced water collected from Aadi Oil Field in Gujar Khan, Pakistan. Produced water was analyzed for physicochemical parameters and heavy metal content [...] Read more.
This study investigated the potential of microbial-assisted phytoremediation using Eichhornia crassipes (water hyacinth) to reduce heavy metal and salinity pollution in produced water collected from Aadi Oil Field in Gujar Khan, Pakistan. Produced water was analyzed for physicochemical parameters and heavy metal content using Inductively Coupled Plasma–Optical Emission Spectrometry (ICP-OES) to establish baseline data. E. crassipes plants augmented with indigenous, contaminant-tolerant microbial isolates were employed in a 15-day laboratory experiment. The results showed a resilient growth response, with plant height increasing to approximately 11–15 cm and root length extending up to 10–13 cm across treatments. Biomass also improved, with wet weights reaching 21–24 g from an initial 20 g. The treatment effectively reduced key physicochemical parameters: pH was stabilized from an initial alkaline value of 9.14 to near-neutral values (7.0–7.5), and total dissolved solids (TDSs) were reduced by approximately 50%. Heavy metal removal rates varied, with the highest efficiency of 79.2% for Silver (Ag) and the lowest (18.5%) for Mercury (Hg) This study demonstrates that E. crassipes actively participated in phytoremediation by absorbing and accumulating heavy metals and reducing salinity. The association with contaminant-tolerant microbes appeared to enhance the plant’s tolerance and overall treatment efficacy, indicating that plant–microbe interactions offer a sustainable strategy for the treatment of produced water. Full article
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19 pages, 884 KB  
Review
A Review on the Potential of Water Hyacinth to Enhance Ruminant Performance
by Khakhathi Milicent Ralinala, Thivhilaheli Richard Netshirovha, Tendani Lucky Nesengani, Ntanganedzeni Olivia Mapholi and Michael Chimonyo
Animals 2026, 16(11), 1590; https://doi.org/10.3390/ani16111590 - 23 May 2026
Viewed by 909
Abstract
The utilization of unconventional feed resources offers a sustainable strategy to mitigate feed shortages particularly in tropical and subtropical regions where access to conventional feeds is often limited. Among these, water hyacinth (Eichhornia crassipes) is one of the world’s most aggressive [...] Read more.
The utilization of unconventional feed resources offers a sustainable strategy to mitigate feed shortages particularly in tropical and subtropical regions where access to conventional feeds is often limited. Among these, water hyacinth (Eichhornia crassipes) is one of the world’s most aggressive aquatic weeds, which has drawn attention due to its dual role as a problematic invasive species and a potential livestock feed. This plant reduces water quality, contributes to biodiversity loss and causes economic damage in farming systems. At the same time, its high capacity for nutrient absorption makes it a viable source of protein and energy for ruminants when properly harvested and processed into forms such as hay, dried leaves, and silage. However, its utilization requires caution, as the plant can accumulate toxins and heavy metals from polluted water, which may harm animal health if unprocessed. This review focuses on the potential of water hyacinth to improve ruminant growth performance, nutrient digestibility and rumen fermentation. Including water hyacinth in ruminant diet safely can possibly improve animal productivity, contribute to sustainable weed management and also provide a practical strategy to alleviate feed shortage in dry seasons, thereby encouraging resilience and sustainable ruminant production. Full article
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20 pages, 2924 KB  
Article
Hydrological and Water Quality Implications of Water Hyacinth: A Case Study of Lake Tana, Ethiopian Highlands
by Alemu B. Mengesha, Temesgen Enku, Assefa M. Melesse and Minychl G. Dersseh
Water 2026, 18(10), 1247; https://doi.org/10.3390/w18101247 - 21 May 2026
Viewed by 387
Abstract
Water hyacinth (Eichhornia crassipes) is a widespread invasive plant in tropical and subtropical regions, creating serious ecological and hydrological problems. Beyond disrupting aquatic ecosystems, it increases unaccounted water loss and alters key physicochemical properties. This study evaluated the evapotranspiration of water [...] Read more.
Water hyacinth (Eichhornia crassipes) is a widespread invasive plant in tropical and subtropical regions, creating serious ecological and hydrological problems. Beyond disrupting aquatic ecosystems, it increases unaccounted water loss and alters key physicochemical properties. This study evaluated the evapotranspiration of water hyacinth and its influence on water quality in Lake Tana, Ethiopia’s largest freshwater lake. Two artificial ponds (one control and one covered with water hyacinth), each measuring 1 m × 1 m × 0.94 m, were monitored over three months to quantify water loss. In parallel, water samples were collected from the lake at 0.5 m depth along 2 km intervals, comparing hyacinth infested and open-water sites. The results showed clear differences between conditions. Dissolved oxygen was significantly lower in hyacinth-covered areas (6.65 ± 0.44 mg/L) than in open water (7.93 ± 0.42 mg/L). Similarly, pH decreased under hyacinth cover (5.53 ± 0.53) compared to non-infested sites (6.53 ± 0.40). In contrast, water temperature increased in infested areas (23.70 ± 0.42 °C) relative to open water (22.08 ± 0.33 °C). Total dissolved solids were slightly but significantly lower in hyacinth-covered water. Evapotranspiration from water hyacinth was about 1.6 times higher than evaporation from open water, with an estimated monthly loss of 0.28 m3 per square meter. When scaled to lake conditions, this corresponds to approximately 0.78 to 7.01 million m3 of water loss per month, though actual values may vary due to environmental factors. Overall, water hyacinth substantially affects both water quantity and quality, highlighting its importance for lake management and sustainable water use. Full article
(This article belongs to the Section Water Quality and Contamination)
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34 pages, 1556 KB  
Review
Impact of Heavy Metal Sequestration During Phytoremediation of Textile Wastewater on Biogas Yield of Aquatic Plants: A Review
by Kaizar Hossain, Sayanti Kar, Dipsita Hati, Arpita Ghosh, Sinjini Sengupta, Souvik Paul, Avik De and Abhishek RoyChowdhury
Biomass 2026, 6(3), 34; https://doi.org/10.3390/biomass6030034 - 28 Apr 2026
Viewed by 1267
Abstract
The textile industry consumes a significant quantity of water and produces effluent containing water-soluble dyes and heavy metals such as Lead (Pb), Cadmium (Cd), Chromium (Cr), Copper (Cu), and Zinc (Zn), among others. Heavy metal contamination of water bodies and their impact on [...] Read more.
The textile industry consumes a significant quantity of water and produces effluent containing water-soluble dyes and heavy metals such as Lead (Pb), Cadmium (Cd), Chromium (Cr), Copper (Cu), and Zinc (Zn), among others. Heavy metal contamination of water bodies and their impact on aquatic life, as well as on human health, is of prime importance. This review examined the potential of phytoremediation, a low-cost and eco-friendly process for removing contaminants from textile effluent. This review also investigated the impact of heavy metal toxicity on aquatic plants used for biogas production post phytoremediation application. This review evaluated textile effluent characteristics, efficiency evaluation of phytoremediation of textile wastewater, metal uptake mechanisms of aquatic plants, and anaerobic digestion processes with emphasis on Water hyacinth (Eichhornia crassipes), Duckweed (Lemna minor), and Water lettuce (Pistia stratiotes). The findings indicated that these aquatic plants possess immense potential for removing heavy metals and other impurities by employing phytoextraction and rhizofiltration methods. Their rapid growth rate makes them preferred candidates for anaerobic digestion. However, accumulation of heavy metals in plant tissues inhibits microbial activities during anaerobic digestion, resulting in fluctuations in biogas and methane production. Findings also showed that these aquatic plants are efficient in the removal of heavy metals in water while yielding considerable biomass that can be used to produce bioenergy through anaerobic digestion. However, the sequestration of heavy metals in plant biomass may affect the rate of methane generation efficiency. The findings of this review suggest that phytoremediation has promising potential for the recycling of textile wastewater and, when coupled with biogas production, contributes towards a circular bioeconomy, an approach that integrates closed-loop resource utilization with renewable biological systems to minimize waste. Full article
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21 pages, 1692 KB  
Article
Evaluation of Habitat Suitability and Assessment of the Invasion Risk of Water Hyacinth [Eichhornia crassipes (Mart.) Solms] in Global Freshwater Ecosystems
by Prabhat Adhikari, Pradeep Adhikari, Anil Poudel, Yong Ho Lee and Sun Hee Hong
Plants 2026, 15(8), 1279; https://doi.org/10.3390/plants15081279 - 21 Apr 2026
Viewed by 960
Abstract
Aquatic ecosystems worldwide are increasingly threatened by invasive species, with water hyacinth [Eichhornia crassipes (Mart.) Solms] being among the most destructive aquatic weeds. Despite numerous regional studies, a global assessment integrating climatic and hydrological drivers remains lacking. Here, we assessed current and [...] Read more.
Aquatic ecosystems worldwide are increasingly threatened by invasive species, with water hyacinth [Eichhornia crassipes (Mart.) Solms] being among the most destructive aquatic weeds. Despite numerous regional studies, a global assessment integrating climatic and hydrological drivers remains lacking. Here, we assessed current and future invasion risks across 55,945 freshwater lakes using the maximum entropy (MaxEnt) model. Climatic variables and key aquatic parameters, including biological oxygen demand (BOD), water depth, and discharge, were incorporated under two shared socioeconomic pathways (SSP2-4.5 and SSP5-8.5). Annual mean temperature, annual precipitation, and BOD were the strongest predictors of habitat suitability. Under current conditions, 5524 lakes, primarily in tropical and subtropical regions, were identified as being suitable habitats, with medium-sized lakes exhibiting the highest proportional suitability (16.54%). Although small lakes were most frequently classified as suitable due to their abundance, larger lakes showed higher suitability intensity. Future projections indicated marked habitat expansion, especially under SSP5-8.5, with suitable lake surface area increasing to 18.12% by 2061–2080. Moreover, 543 currently unsuitable lakes, including Lake Erie, Lake Huron, and Lake Ontario, were projected to face elevated invasion risk, particularly in Africa, South Asia, Southeast Asia, and North America. This global, lake-specific assessment supports early warning, targeted management, and climate-responsive policy planning. Full article
(This article belongs to the Special Issue Advances in Invasive Plant Ecology)
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16 pages, 313 KB  
Article
Comparative Evaluation of Aquatic Macrophytes for Heavy Metal Removal in Contaminated Wastewater Under Controlled Conditions
by José Cintra Rodrigues, Cláudia Cândida Silva, Jakelline Braga dos Santos, Aline Lopes, Maria Teresa Fernandez Piedade and Joana D’Arc de Paula
Appl. Sci. 2026, 16(7), 3558; https://doi.org/10.3390/app16073558 - 5 Apr 2026
Viewed by 593
Abstract
Heavy metal contamination of freshwater systems represents a persistent environmental challenge due to metal toxicity, non-biodegradability, and bioaccumulation potential. This study compared the phytoremediation performance of Eichhornia crassipes, Pistia stratiotes, and Chrysopogon zizanioides for the removal of chromium (Cr), copper (Cu), [...] Read more.
Heavy metal contamination of freshwater systems represents a persistent environmental challenge due to metal toxicity, non-biodegradability, and bioaccumulation potential. This study compared the phytoremediation performance of Eichhornia crassipes, Pistia stratiotes, and Chrysopogon zizanioides for the removal of chromium (Cr), copper (Cu), cadmium (Cd), and lead (Pb) from contaminated water under controlled conditions. Plants were exposed to aqueous solutions containing 5 mg L−1 of the four metals for 45 days. Metal concentrations in roots and shoots were determined by wavelength-dispersive X-ray fluorescence, translocation factor (TF), bioconcentration factor (BCF), and removal efficiency (RE) were calculated. TF values (0.02–2.90) varied across species, metals, and experimental conditions, indicating a general tendency for metal retention in roots, although translocation to shoots occurred in several cases. BCF values (0.04–87.55) were significantly influenced by species, exposure time, and treatment (p < 0.05), with P. stratiotes showing higher accumulation under specific conditions (Cu = 87.55; Pb = 44.56). In contrast, RE showed high variability (−616.21 to 72.72%) and no significant differences among experimental factors. Overall, the results demonstrate context-dependent variation in metal uptake and translocation, highlighting the potential of aquatic macrophytes as low-cost alternatives for the treatment of metal-contaminated wastewater systems. Full article
9 pages, 1393 KB  
Proceeding Paper
Phytofabrication of Silver Nanoparticles from Water Hyacinth (Eichhornia crassipes) as a Potential Pest Control Tool for Spodoptera frugiperda 
by Joserie Joice Reyes, Jeremy Kyle Edson Austria, Ma. Angelica Chua, Anna Maria Parzuelo, Sean Carlo Castro, Jerry Go Olay, Rugi Vicente Rubi and Carlou Siga-an Eguico
Eng. Proc. 2026, 124(1), 91; https://doi.org/10.3390/engproc2026124091 - 26 Mar 2026
Viewed by 819
Abstract
The invasive fall armyworm (Spodoptera frugiperda) threatens Philippine crops, highlighting the need for sustainable pest management. This study therefore optimizes the green synthesis of silver nanoparticles (AgNPs) from water hyacinth (Eichhornia crassipes), an abundant and problematic aquatic weed, as [...] Read more.
The invasive fall armyworm (Spodoptera frugiperda) threatens Philippine crops, highlighting the need for sustainable pest management. This study therefore optimizes the green synthesis of silver nanoparticles (AgNPs) from water hyacinth (Eichhornia crassipes), an abundant and problematic aquatic weed, as a potential pest control tool. Methanolic leaf extracts were prepared under varying methanol concentrations, temperatures, and extraction times, and total phenolic content was quantified using the Folin–Ciocalteu method. SEM–EDX confirmed the formation of silver nanoparticles synthesized from Eichhornia crassipes (Ec-AgNPs), with particles observed at ≤100 nm. Optimal extraction occurred at 47 °C, 90% methanol, and 76 min, maximizing phenolic yield. Overall, results suggest phenolic content and extract volume influence nanoparticle size and stability, with larger extract volumes increasing agglomeration risk. Pesticidal efficacy was not evaluated; further work is needed to assess pest control performance. Full article
(This article belongs to the Proceedings of The 6th International Electronic Conference on Applied Sciences)
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