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Search Results (165)

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Keywords = low-cost water purification

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19 pages, 4838 KB  
Article
From Pollutant to High-Value Filter: Nano-Activated Carbon/Styrofoam Composite Membranes for Spirulina Biomass Separation
by Jonathan Deven, Chandrawati Putri Wulandari, Muslim Mahardika, Aini Zuhra Abdul Kadir and Gunawan Setia Prihandana
Phycology 2026, 6(3), 80; https://doi.org/10.3390/phycology6030080 - 17 Jul 2026
Viewed by 235
Abstract
The global crisis of expanded polystyrene (EPS) waste and the rising demand for affordable water purification technologies necessitate the development of sustainable, high-performance filtration materials. This study reports the successful upcycling of post-consumer Styrofoam into functional nanocomposite membranes reinforced with nano-activated carbon (nAC). [...] Read more.
The global crisis of expanded polystyrene (EPS) waste and the rising demand for affordable water purification technologies necessitate the development of sustainable, high-performance filtration materials. This study reports the successful upcycling of post-consumer Styrofoam into functional nanocomposite membranes reinforced with nano-activated carbon (nAC). Fabricated via nonsolvent-induced phase separation (NIPS) with nAC concentrations ranging from 0 to 0.4 wt.%, the membranes were evaluated to determine the synergistic effects of nanoparticle loading on morphology and transport phenomena. Scanning electron microscopy (SEM) revealed a stable asymmetric architecture characterized by a dense selective skin layer and a porous support structure. The integration of nAC significantly enhanced both surface hydrophilicity and structural porosity. The 0.3 wt.% nAC loading yielded optimal results, achieving a minimum water contact angle of 70.03° and a maximum porosity of 93.17%. Consequently, hydraulic permeability reached a peak of 35.66 LMH/bar, an approximate 223% improvement over the pristine EPS baseline. Performance evaluations utilizing Spirulina platensis as a model biomass demonstrated an absolute rejection efficiency of 100% and a turbidity reduction to 0 NTU across all composite variations, confirming robust size-exclusion capabilities. These findings demonstrate that incorporating nAC effectively transforms recycled Styrofoam into a high-value, sustainable filtration medium, offering a highly efficient and low-cost solution for cyanobacteria harvesting and environmental remediation. Full article
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19 pages, 4849 KB  
Article
Purification of Carbon Dots: The Role of Dialysis Time for Effective Photocatalytic Hydrogen Production
by Nerea Rodríguez, María F. Vega, Elvira Díaz-Faes and Carmen Barriocanal
Energies 2026, 19(14), 3332; https://doi.org/10.3390/en19143332 - 15 Jul 2026
Viewed by 313
Abstract
The synthesis of metal-free heterostructures is useful for the generation of sustainable green hydrogen production and is becoming more relevant in the last years. Among emerging materials, carbon nitride (CN) decorated with carbon dots (CDs) offers a suitable alternative to traditional semiconductors due [...] Read more.
The synthesis of metal-free heterostructures is useful for the generation of sustainable green hydrogen production and is becoming more relevant in the last years. Among emerging materials, carbon nitride (CN) decorated with carbon dots (CDs) offers a suitable alternative to traditional semiconductors due to its low cost and tuneable optical properties. In this paper, the interaction between carbon dots (CDs) and carbon nitride (CN) is studied to evaluate how the degree of purification affects the efficiency of photocatalytic water-splitting reactions. The CDs were synthetized via a hydrothermal carbonization process at 180 °C for 8 h from citric acid and ethylenediamine (EDA) as precursors and then they are subjected to purification through dialysis (0–72 h). This synthesis generates a complex mixture of CDs, unreacted precursors and molecular fluorophores. The purification degree presents a direct impact on the HER values, increasing them 1.7 times compared to the initial value of the pristine CN (1941 μmol/h·g. The analysis of the CN/CD properties and the CDs characterization reveals that the surrounded matrix around the CDs and the functional groups attached to them are essential for avoiding the recombination of photogenerated electron/hole pairs, raising the charge density on the system and reducing the transfer barrier. Full article
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32 pages, 13054 KB  
Article
Mechanistic Insights into Biodegradable Silica–Starch Composite Materials—Structural and Adsorption Properties
by Malgorzata Zienkiewicz-Strzalka, Magdalena Blachnio, Krystian Czuchryta and Anna Derylo-Marczewska
Int. J. Mol. Sci. 2026, 27(14), 6243; https://doi.org/10.3390/ijms27146243 - 14 Jul 2026
Viewed by 310
Abstract
Silica–starch composites were synthesized via a modified sol–gel route and evaluated as low-cost, biodegradable adsorbents for the removal of organic dyes from aqueous solutions. The formation of mesoporous hybrid networks and structural reorganization of starch upon integration with the silica phase were confirmed. [...] Read more.
Silica–starch composites were synthesized via a modified sol–gel route and evaluated as low-cost, biodegradable adsorbents for the removal of organic dyes from aqueous solutions. The formation of mesoporous hybrid networks and structural reorganization of starch upon integration with the silica phase were confirmed. The physicochemical properties of the composites were examined using nitrogen adsorption–desorption analysis, SEM imaging, SAXS, and XRD, providing complementary insights into their porous structure, morphology, and structural organization. Adsorption performance and kinetics were evaluated through continuous UV–Vis spectroscopic monitoring of dye concentration during the sorption process. Adsorption studies using methylene blue demonstrated that dye uptake proceeds through a combination of electrostatic interactions, hydrogen bonding between dye molecules and hydroxyl-rich starch domains, and diffusion-driven retention within the mesoporous silica framework. The proposed materials offer significant advantages arising from their simple, inexpensive synthesis and fully biodegradable nature. These features position silica–starch composites as sustainable sorbents suitable for environmentally oriented water purification applications. Full article
(This article belongs to the Special Issue Molecular Adsorption Mechanisms: Theoretical and Experimental Studies)
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15 pages, 1711 KB  
Article
Fumed Silica-Derived CoOx@SiO2 Composites for Catalytic Reduction of 2-Nitrophenol
by Amina Zharkenova, Aigerim Galyamova, Vassilis J. Inglezakis and Andrey Y. Khalimon
Molecules 2026, 31(13), 2282; https://doi.org/10.3390/molecules31132282 - 30 Jun 2026
Viewed by 406
Abstract
Nitrophenols, despite their wide synthetic utility in the specialty chemical industry, are recognized as toxic and can pose a serious environmental hazard. A popular strategy for the purification of wastewater containing nitrophenols is their catalytic reduction to the corresponding aminophenols in the presence [...] Read more.
Nitrophenols, despite their wide synthetic utility in the specialty chemical industry, are recognized as toxic and can pose a serious environmental hazard. A popular strategy for the purification of wastewater containing nitrophenols is their catalytic reduction to the corresponding aminophenols in the presence of supported transition metal catalysts. However, the practical application of such systems is hindered by tedious catalyst manufacturing protocols and strong dependence on the catalyst/support microstructure. Herein, a series of CoOx@SiO2 composites was prepared by a direct reduction of aqueous solutions of Co(II) salts (Co(OAc)2, CoCl2, and CoF2) with fumed silica having a triethoxysilane-modified surface. The prepared composites, despite the observed low cobalt content (0.1–0.2 wt%), proved highly effective in reducing 2-nitrophenol to 2-aminophenol, demonstrating a cost-effective, readily available non-precious-metal-based system for the remediation of nitrophenols from contaminated water. Full article
(This article belongs to the Special Issue Inorganic Chemistry in Asia, 2nd Edition)
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10 pages, 2426 KB  
Article
A Multipurpose Hydrogen Storage System Using AB5– and AB2–Type Metal Hydrides for Flexible Hydrogen Storage and Delivery
by Pyoungjong Lee, Kwangjin Jung, Kyoungsoo Kang, Seonguk Jeong, Ki Bong Lee, Joonho Kim and Chusik Park
Energies 2026, 19(13), 3010; https://doi.org/10.3390/en19133010 - 25 Jun 2026
Viewed by 319
Abstract
Metal hydrides can safely store hydrogen in the solid state at high volumetric density under moderate temperature and pressure. Their hydrogen sorption characteristics are represented by pressure–composition–temperature (PCT) curves. AB5–type metal hydrides, which have low plateau pressures, store and release hydrogen [...] Read more.
Metal hydrides can safely store hydrogen in the solid state at high volumetric density under moderate temperature and pressure. Their hydrogen sorption characteristics are represented by pressure–composition–temperature (PCT) curves. AB5–type metal hydrides, which have low plateau pressures, store and release hydrogen at low pressures. AB2–type metal hydrides, which have high plateau pressures, store and release hydrogen at relatively high pressures. Compared with AB5–type metal hydrides, AB2–type metal hydrides generally have lower raw material costs and higher hydrogen storage capacity. This makes them more suitable for storing large quantities of hydrogen. Green and blue hydrogen are produced using commercial alkaline water electrolyzers and natural gas reformers, respectively. After downstream purification, this hydrogen is typically supplied at pressures below 1 MPa. However, the high plateau pressures of AB2–type metal hydrides make it difficult to store this low-pressure hydrogen directly. AB5–type metal hydrides can store it but release it only at low pressures. A single hydride type therefore operates within a narrow pressure range for both storage and delivery. In this study, a multipurpose hydrogen storage system (MHSS) using AB5– and AB2–type metal hydrides was proposed to broaden the applications of metal hydride-based systems. The feasibility of the MHSS was experimentally evaluated through lab-scale tests. The AB5 and AB2 modules were first tested as standalone units. The integrated MHSS was then tested assuming that waste heat was continuously available. The MHSS can store a large quantity of low-pressure hydrogen and deliver it across a wide pressure range. This range covers diverse end uses, from fuel cells at 0.5 MPa to hydrogen pipelines at 4.0 MPa. Full article
(This article belongs to the Topic Advances in Hydrogen Energy)
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21 pages, 736 KB  
Article
Cost Assessment of a Proposed Combined MDC–RO Process as a Performance Upgrade of the Doha Plant (Kuwait)
by Mohammad S. Shanat, Ibrahim M. M., Mohamed Abdel-Hamid, Wail A. Fahmy and Mostafa M. El-Seddik
Water 2026, 18(12), 1460; https://doi.org/10.3390/w18121460 - 13 Jun 2026
Viewed by 454
Abstract
In the Arabian Gulf region, saltwater desalination is considered to be a significant process in producing clean water. This paper presents a sustainable, combined process for upgrading a Doha reverse osmosis (RO) plant in Kuwait. A pilot-scale microbial desalination cell (MDC) stack is [...] Read more.
In the Arabian Gulf region, saltwater desalination is considered to be a significant process in producing clean water. This paper presents a sustainable, combined process for upgrading a Doha reverse osmosis (RO) plant in Kuwait. A pilot-scale microbial desalination cell (MDC) stack is proposed as a pre-treatment unit prior to the RO process in order to improve plant performance. A cost–benefit analysis is conducted for the combined system to emphasize the significance of the MDC–RO process. In RO, the expected energy consumption is 2.6–13 kWh per m3 of desalinated water, whereas using MDC can reduce this to about 0.52–5.3 kWh/m3. Moreover, this new technology using catalytic MDCs can help in improving electric current production and reducing the amount of rejected brine and membrane fouling in the RO process. The electric current is improved by reducing MDCs’ internal resistance using a reduced graphene oxide/polyaniline composite-coated stainless steel mesh cathode electrode. Layer-by-layer electro-deposition can be applied to achieve these coatings. An intermediate zeolite filter is proposed to mitigate RO membrane fouling. The combined system’s natural zeolite-membrane filter improves water purification. In this study, we assessed the combined MDC–RO process for upgrading the Doha plant’s performance in terms of quality, cost, and time. The suggested catalytic MDC, using efficient, low-cost materials as cathode electrodes with an equivalent daily cost of 0.01 USD/m3 and a desalination efficiency of about 40%, acts as an alternative to high-cost platinum metal electrodes. The results also indicate that the equivalent daily cost of energy consumption using the MDC process is about 0.03 USD/m3, whereas the investment cost is about 0.4 USD/m3 daily for one year of cell operation. Full article
(This article belongs to the Section Wastewater Treatment and Reuse)
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33 pages, 1199 KB  
Review
Advances in Catalytic Materials for Wastewater Treatment: Design Strategies and Reaction Mechanisms
by Qing Xu, Wenwen Liu, Linhong Xie, Jiayi Shao, Leihe Cai, Wenhao Lv, Haowei Li, Shengxian Xian and Yujian Wu
Catalysts 2026, 16(5), 472; https://doi.org/10.3390/catal16050472 - 19 May 2026
Viewed by 888
Abstract
With the growing severity of water pollution, conventional treatment technologies are increasingly unable to satisfy the demand for deep purification. Catalytic wastewater treatment has emerged as an effective strategy for degrading refractory pollutants because of its high efficiency, mild operating conditions, and environmentally [...] Read more.
With the growing severity of water pollution, conventional treatment technologies are increasingly unable to satisfy the demand for deep purification. Catalytic wastewater treatment has emerged as an effective strategy for degrading refractory pollutants because of its high efficiency, mild operating conditions, and environmentally friendly nature. This review systematically summarizes recent progress in catalytic materials for wastewater treatment, covering four major categories: metal-based materials, carbon-based materials, multicomponent composites, and photo/electrocatalytic systems. Particular attention is given to their design strategies, structural characteristics, and performance advantages. On this basis, the full mechanistic chain is discussed, from interfacial adsorption and activation to reactive-species generation, including both radical and non-radical pathways, intermediate transformation, and macroscopic reaction kinetics. The review also highlights representative applications in practical wastewater streams, including textile dyeing and pharmaceutical, chemical, landfill leachate, and municipal tailwater treatment, thereby demonstrating the engineering potential of catalytic technologies. At the same time, several critical challenges remain, including insufficient long-term material stability, incomplete mechanistic understanding in complex water matrices, limited adaptability to real wastewater, and the high cost of large-scale preparation. Future research should therefore focus on the development of highly stable, low-cost, and interference-resistant catalytic materials, deeper mechanistic elucidation through in situ characterization and theoretical calculations, stronger integration with membrane separation, biological treatment, photovoltaic or electrochemical processes, and the establishment of standardized evaluation protocols and life-cycle assessment frameworks. These efforts will accelerate the transition of catalytic wastewater treatment toward greener, smarter, and more practical engineering applications. Full article
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56 pages, 2888 KB  
Review
Review of the Application of Zeolites as Sorption Materials in Water Treatment
by Marek Nykiel, Gabriel Furtos, Kacper Oliwa, Michał Łach and Kinga Korniejenko
Sustainability 2026, 18(10), 5045; https://doi.org/10.3390/su18105045 - 17 May 2026
Cited by 1 | Viewed by 732
Abstract
The pollution of water, including salt and fresh water, has become an emergency problem. Pollutants come from different sources and have various characteristics, starting from industry and fertilizers used in agriculture, sewage related to human living, and other sources. Diverse sources of pollution [...] Read more.
The pollution of water, including salt and fresh water, has become an emergency problem. Pollutants come from different sources and have various characteristics, starting from industry and fertilizers used in agriculture, sewage related to human living, and other sources. Diverse sources of pollution require a comprehensive approach to water purification. One possible approach may be the use of appropriate sorbents. Currently, one of the most promising materials used is zeolites. This is because they can come from various sources, including waste raw materials such as fly ash, and, therefore, allow for the use of a circular economy approach. Moreover, these materials can be modified, which enables their selective use for selected types of pollutants. Eventually, these materials become economically viable options. The main aim of this article is to present and analyze possible solutions to water pollution based on zeolite materials. For this purpose, a critical literature review was prepared. The review reveals that zeolites perform particularly well in ion-exchange-driven removal of inorganic contaminants, while their effectiveness for organic micropollutants under realistic conditions is often limited. The identified trade-offs between removal efficiency, regeneration stability, and scalability indicate that zeolites are best applied as function-specific rather than universal sorbents. From a sustainability perspective, this targeted applicability is supported by advantages, such as low material cost, long service life, and the possibility of using naturally occurring or waste-derived precursors, which, together, enable resource-efficient water treatment processes, reduced reliance on energy-intensive technologies, and the valorization of industrial byproducts within circular economy frameworks. Full article
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27 pages, 4026 KB  
Review
Advanced Strategies for Upgrading Raw Biogas into High-Quality Biomethane for Domestic Applications
by Reckson Kamusoko and Patrick Mukumba
Bioengineering 2026, 13(5), 543; https://doi.org/10.3390/bioengineering13050543 - 9 May 2026
Viewed by 1529
Abstract
Biogas produced from the anaerobic digestion of organic matter holds much promise as a renewable energy source for decentralized systems. However, raw biogas contains substantial volumes of carbon dioxide, hydrogen sulfide, water vapor, and other trace impurities. These impurities can reduce the calorific [...] Read more.
Biogas produced from the anaerobic digestion of organic matter holds much promise as a renewable energy source for decentralized systems. However, raw biogas contains substantial volumes of carbon dioxide, hydrogen sulfide, water vapor, and other trace impurities. These impurities can reduce the calorific value of biogas and limit its direct use for household energy needs. Purifying biogas to high-grade biomethane (≥95%) is therefore important to improve methane (CH4) content and combustion characteristics. This is a guarantee of its safe utilization in domestic appliances, including cooking, heating, lighting, and electricity generation. This article reviews and evaluates novel approaches for upgrading raw biogas into high-purity biomethane that can offset natural gas in domestic applications. It further examines recent developments in conventional and innovative upgrading technologies such as water scrubbing, chemical scrubbing, pressure swing adsorption, membrane separation, cryogenic separation, and biological upgrading. Particular emphasis is placed on low-cost and small-scale solutions suitable for off-grid or mini-grid rural energy systems. Moreover, the role of process optimization, intelligent monitoring, and data-driven control methods in increasing CH4 recovery and process efficiency is discussed. Despite their relatively high capital costs and energy needs, conventional technologies such as water scrubbing, pressure swing adsorption, and membrane technology continue to dominate biogas purification systems. The findings show that coupling advanced separation technologies, including cryogenic separation, biological upgrading, and hybrid technologies, with optimized process control can significantly improve CH4 purity, save energy use, and enhance the overall consistency of biogas purification systems. These innovative strategies have strong potential to promote the full-scale adoption of biomethane as a clean, sustainable, and affordable energy source for decentralized applications, particularly in the developing world. Full article
(This article belongs to the Special Issue Anaerobic Digestion Advances in Biomass and Waste Treatment)
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39 pages, 9944 KB  
Review
Polymeric Sorbents in Environmental Protection-Removal of Hydrocarbons and Toxic Chemical Pollutants from Water: A Review
by Bakary Tamboura, Anastasia Konstantinova, Aleksey Kotenko and Evgeniy Chistyakov
Macromol 2026, 6(2), 28; https://doi.org/10.3390/macromol6020028 - 8 May 2026
Cited by 3 | Viewed by 886
Abstract
This review analyzes the advances over a five-year period in the development of polymeric sorbents for the purification of aqueous media from key classes of pollutants: hydrocarbons (crude oil, diesel fuel), organic dyes, pharmaceuticals (antibiotics), pesticides, herbicides, volatile organic compounds, and polycyclic aromatic [...] Read more.
This review analyzes the advances over a five-year period in the development of polymeric sorbents for the purification of aqueous media from key classes of pollutants: hydrocarbons (crude oil, diesel fuel), organic dyes, pharmaceuticals (antibiotics), pesticides, herbicides, volatile organic compounds, and polycyclic aromatic hydrocarbons. Attention is paid to the analysis of structure-property-performance relationships, with an emphasis on comparing materials derived from renewable natural feedstocks (such as cellulose, chitosan, terpenes, vegetable oils, and aloe vera) with synthetic polymers. The analysis reveals that biopolymer-based sorbents exhibit comparable or superior sorption capacities combined with environmental safety, biodegradability, and low cost. The key sorption mechanisms include physical adsorption, hydrophobic interactions, and electrostatic interactions. Despite persisting challenges related to scalability, stability in real-world environments, and the need for efficient regeneration protocols, a convergent approach that combines the advantages of modified natural polymers and functional synthetic components appears to be the most promising strategy for developing cost-effective and sustainable technologies for the restoration of water quality. Full article
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16 pages, 10388 KB  
Article
Marangoni Effect-Enhanced Iron–Tannin Modified Collagen–Based Evaporator for High-Performance Solar Desalination
by Yan Li, Kang Yang, Hongkun Ren, Haoqian Zhu, Yulu Wang, Liqiang Jin and Hao Li
Sustainability 2026, 18(8), 3944; https://doi.org/10.3390/su18083944 - 16 Apr 2026
Viewed by 472
Abstract
Solar-driven interfacial evaporation is a promising strategy for alleviating freshwater scarcity and water pollution. However, developing efficient evaporators using eco-friendly, renewable biomass remains a significant challenge. Herein, we report a bio-derived solar-driven interfacial evaporator (CSIE) based on iron–tannin modified collagen, further enhanced via [...] Read more.
Solar-driven interfacial evaporation is a promising strategy for alleviating freshwater scarcity and water pollution. However, developing efficient evaporators using eco-friendly, renewable biomass remains a significant challenge. Herein, we report a bio-derived solar-driven interfacial evaporator (CSIE) based on iron–tannin modified collagen, further enhanced via mechanical micro-perforations to induce the Marangoni effect (EN-CSIE). The influence of pore size and open-area ratio on the Marangoni-driven flow was systematically investigated. The optimized EN-CSIE (with 1.2 mm pore size and 6.1% open-area ratio) achieved a superior evaporation rate of 2.5 kg m−2 h−1 with an energy conversion efficiency of 93.5% under 1 sun illumination. Furthermore, the system demonstrated exceptional purification capabilities, removing over 99.9% of metal ions and organic impurities. Long-term durability tests in 3.5 wt% saline water confirmed a stable evaporation rate of 2.3 kg m−2 h−1 over 15 continuous cycles. This low-cost and sustainable collagen-based evaporator presents a robust solution for solar-powered water desalination, particularly for decentralized clean water production in sun-rich regions. Full article
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24 pages, 1058 KB  
Review
Ionic Liquids and Deep Eutectic Solvents for Polyphenol Extraction: Opportunities and Limitations
by Gonçalo P. Rosa, Maria Carmo Barreto, Ana M. L. Seca and Diana C. G. A. Pinto
Int. J. Mol. Sci. 2026, 27(8), 3538; https://doi.org/10.3390/ijms27083538 - 15 Apr 2026
Cited by 3 | Viewed by 1465
Abstract
Polyphenols are structurally diverse plant secondary metabolites with broad biological activities and growing applications across the food, health, and materials sectors. Conventional extraction based on organic solvents (e.g., methanol, ethanol) is often energy-intensive, inefficient, and environmentally burdensome. Ionic liquids (ILs) and deep eutectic [...] Read more.
Polyphenols are structurally diverse plant secondary metabolites with broad biological activities and growing applications across the food, health, and materials sectors. Conventional extraction based on organic solvents (e.g., methanol, ethanol) is often energy-intensive, inefficient, and environmentally burdensome. Ionic liquids (ILs) and deep eutectic solvents (DESs) have therefore emerged as greener alternatives for polyphenol extraction. This review evaluates recent advances in solvent design, extraction performance, and process sustainability. Imidazolium-based ILs frequently achieve high yields and selectivity, particularly when coupled with ultrasound or microwave-assisted extraction, but high cost, synthetic complexity, viscosity-related constraints, and potential toxicity hinder scaleup. By contrast, DESs—especially those derived from choline chloride or lactic acid—are easier to prepare, less costly, and more compatible with industrial implementation, with efficiency enhanced by tailoring hydrogen bond networks, water content, and process intensification. Critical downstream challenges persist for both solvent classes, notably in extract purification and solvent recovery due to low volatility; approaches such as resin adsorption, antisolvent precipitation, and direct formulation have been explored. Overall, ILs and DESs represent compelling alternatives to conventional solvents, and future progress will depend on integrated extraction–recovery strategies, systematic solvent selection, and validation under scalable, sustainable processing conditions. Full article
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16 pages, 3397 KB  
Article
Biomass-Derived Carbon–Silica Hybrid Biochar for Nano- and Microplastic Adsorption
by Weimin Gao, Qiyang Ling, Dantong Zhu and Xiangju Cheng
Sustainability 2026, 18(8), 3721; https://doi.org/10.3390/su18083721 - 9 Apr 2026
Cited by 1 | Viewed by 831
Abstract
Nano- and microplastic contamination poses a growing challenge to aquatic environments, driving the need for efficient and sustainable removal technologies. In this study, carbon–silica hybrid nanoparticles (CSNPs) were synthesized from rice husk-derived black liquor via controlled lignin–silica self-assembly followed by thermal carbonization, providing [...] Read more.
Nano- and microplastic contamination poses a growing challenge to aquatic environments, driving the need for efficient and sustainable removal technologies. In this study, carbon–silica hybrid nanoparticles (CSNPs) were synthesized from rice husk-derived black liquor via controlled lignin–silica self-assembly followed by thermal carbonization, providing a waste-recycling biorefinery route for value-added material production. Structural characterizations revealed that carbonization generates a hierarchically porous carbon–silica hybrid with enhanced surface area. The CSNPs exhibited rapid and size-dependent adsorption toward nano- and microplastics (200–1000 nm), with optimal performance observed for 500 nm particles. Microscopic observations further demonstrated a size-adaptive capture mechanism, involving pore filling and surface adsorption for nanoplastics and aggregate-assisted encapsulation for larger microplastics. This study highlights CSNPs as low-cost and effective adsorbents for broad-spectrum plastic removal while offering a sustainable pathway for the high-value utilization of black liquor and rice husk biomass in water purification applications. Full article
(This article belongs to the Topic Advances and Innovations in Waste Management)
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22 pages, 7096 KB  
Review
Recent Advances in Bio-Based Fluorescent Hydrogels for Adsorption and Sensing of Toxic Heavy Metal Ions
by Zhixiong Liu, Man Zhang, Haobing Yang, Chunzhen Zhang, Yu Hou, Junling Wang, Peng Fei, Feng Feng and Yu Feng
Molecules 2026, 31(6), 957; https://doi.org/10.3390/molecules31060957 - 12 Mar 2026
Cited by 1 | Viewed by 1368
Abstract
Rapid industrialization and global population growth have led to numerous environmental issues. Among these issues, water polluted with toxic heavy metal ions (HMIs) has become a serious problem. Of the various removal methods, adsorption is considered to be one of the most widely [...] Read more.
Rapid industrialization and global population growth have led to numerous environmental issues. Among these issues, water polluted with toxic heavy metal ions (HMIs) has become a serious problem. Of the various removal methods, adsorption is considered to be one of the most widely used for purifying wastewater due to its simple operation, high adsorption efficiency, low cost and broad applicability. Bio-based hydrogels are becoming increasingly popular for water purification due to the variety of fabrication and modification methods available. These hydrogels act as adsorption aggregators, increasing the local concentration of HMIs. Bio-based fluorescent hydrogels with fluorescent sensors could be further used to sensitively detect the HMIs, accompanied by an obvious fluorescence quenching. The non-radiative energy transfer between the fluorescent sensor and the adsorbed metal ions is responsible for the sensitive detection. In this review, the recent progress of bio-based fluorescent hydrogels for the adsorption and sensing of toxic HMIs is fully summarized. According to the natural hydrogel sources, the bio-based hydrogels, including cellulose-, chitosan-, alginate- and lignin-based hydrogels, are discussed separately. Finally, the challenges, suggestions and opportunities involved in developing novel bio-based fluorescent hydrogels for the adsorption and sensing of toxic HMIs are presented. Full article
(This article belongs to the Special Issue Functional Molecules Design for Nutrition Health)
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17 pages, 3178 KB  
Article
Triple Modification by g-C3N4 Induces Enhanced Photocatalytic Performance of Bi2MoO6 for Efficient Visible-Light Water Treatment
by Qiuqin Wang, Jinlei Wang, Chao Feng, Jinlong Ge, Dazhang Wang, Dong Wang and Cuishuan Xu
Inorganics 2026, 14(3), 70; https://doi.org/10.3390/inorganics14030070 - 27 Feb 2026
Viewed by 791
Abstract
The degradation of aquatic pollutants using eco-friendly and non-toxic photocatalytic materials is a pivotal strategy for water pollution remediation. However, single-component photocatalysts typically suffer from low photocatalytic efficiency due to limited light absorption spectra and rapid recombination of photogenerated charge carriers. This study [...] Read more.
The degradation of aquatic pollutants using eco-friendly and non-toxic photocatalytic materials is a pivotal strategy for water pollution remediation. However, single-component photocatalysts typically suffer from low photocatalytic efficiency due to limited light absorption spectra and rapid recombination of photogenerated charge carriers. This study reports a novel and facile one-step mixing strategy for realizing triple synergistic modifications: heterostructured composite construction, specific surface area regulation, and efficient photogenerated electron–hole pair separation of Bi2MoO6 (BMO) via composite enhancement with low-cost and intrinsically green g-C3N4 (CN), which avoids the high cost, complex processes, and potential pollution risks of precious metal/heavy metal modification for BMO. Under visible-light irradiation, the BMO composite modified with 15 wt% CN achieved a dye removal rate of 85.1% within 60 min, representing a 1.6-fold enhancement in photocatalytic performance compared with that achieved using pristine BMO. We further clarify the unique photocatalytic mechanism of the CN/BMO heterojunction via radical quenching experiments, identifying photogenerated holes (h+) and superoxide radicals (·O2) as the dominant active species for Rhodamine B (RhB) degradation. This study systematically demonstrates a scalable photocatalyst preparation method that integrates controllable specific surface area, rational heterostructure construction, and simple operation, and we provide an in-depth investigation into the photocatalytic reaction process and underlying synergistic enhancement mechanism. The proposed non-metallic modification route provides a new theoretical and experimental basis for the design of high-efficiency BMO-based photocatalysts, and the as-prepared CN/BMO composite holds great potential for practical application in sustainable solar-driven water purification. Full article
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