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In the present work, a nitrogen-rich activated carbon (PAnAC) was prepared using polyaniline (PAn) as a precursor to represent one possible conversion of nitrogen-containing polymeric waste into a valuable adsorbent. PAnAC was fabricated under the chemical activation of KOH and a PAn precursor (in a 4:1 ratio) at 650 °C and was characterized using FTIR, SEM, BET, TGA, and CHN elemental composition. The structural characteristics support its applicability as an adsorbent material. The adsorption performance was assessed in terms of adsorption kinetics for contact time (0-180 min), methyl orange (MO) concentration ( = 50, 100, and 200 ppm), and adsorbent dosages (20, 40, and 80 mg per 250 mL batch). The kinetic results revealed a better fit to a pseudo-second-order, specifically nonlinear equation compared to pseudo-first-order and Elovich equations, which suggests multilayer coverage and a chemical sorption process. The adsorption capacity () was optimal (405.6 mg/g) at MO with PAnAC dosages of 200 ppm and 40 mg and increased as MO increased but decreased as the adsorbent dosage increased. The adsorption mechanism assumes that chemisorption and the rate-controlling step are governed by mass transfer and intraparticle diffusion processes.
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http://dx.doi.org/10.3390/polym15040806 | DOI Listing |
Food Res Int
November 2025
Faculdade de Engenharia de Alimentos (FEA), Universidade Estadual de Campinas (UNICAMP), Rua Monteiro Lobato, 80, 13083-862, Campinas, São Paulo, Brazil. Electronic address:
The hydrolysis of biomass in fermentative processes often faces the difficulty of generating inhibitory products. Its reduction or removal is essential to enable the use of agro-industrial waste, such as cashew apple bagasse. Therefore, this study aimed to find an optimized condition for the hydrolysis of cashew apple bagasse by subcritical water and to introduce an in-line pre-purification process.
View Article and Find Full Text PDFFood Res Int
November 2025
Innovation Center for Advanced Brewing Science and Technology, College of Biomass Science and Engineering, Sichuan University, Chengdu 610065, PR China; National Engineering Research Center of Solid-state Brewing, Luzhou Laojiao Co. Ltd, Luzhou 646000, China; Key Laboratory of Monitoring and Assessm
Fermented foods are valued for their diverse flavor and health benefits, but the formation of ethyl carbamate (EC), a potential carcinogen, during production and storage poses challenges. Current EC reduction methods often compromise flavor and bioactive components. This study exemplifies a novel adsorbent combining activated carbon with metal-organic framework (MOF) chemistry for semi-selective EC removal.
View Article and Find Full Text PDFmBio
September 2025
Key Laboratory of Agricultural Environmental Microbiology, Ministry of Agriculture and Rural Affairs, Department of Microbiology, College of Life Sciences, Nanjing Agricultural University, Nanjing, Jiangsu, China.
Unlabelled: Fungal degradation of cellulose facilitates the sustainable harnessing of biosphere energy and carbon cycling. is one of the basidiomycetes with the largest number of hydrolytic enzymes in its genome. The mycelium of degrades cellulose through the production of substantial amounts of cellulase, enabling the absorption of carbon sources and nutrients essential for fruiting body development.
View Article and Find Full Text PDFAdv Sci (Weinh)
September 2025
Faculty of Engineering, University of Technology Sydney, P.O. Box 123, Broadway, Sydney, NSW, 2007, Australia.
Microalgae-bacteria symbiosis system is significant for sustainable and low-carbon wastewater treatment, with self-aggregation being key to its stable operation and effective pollutant removal. Cellular motility is the main driving force behind self-aggregation, crucial for symbiosis stability, but the characteristics and patterns involved still remain largely unexplored. Here, cellular movement dynamics into the microalgae-activated sludge model (ASM3) is incorporated, enabling synchronized simulation of metabolic activities and movement behaviors through physical and biochemical interactions in bioreactor systems.
View Article and Find Full Text PDFFront Immunol
September 2025
Department of Rheumatology, Endocrinology and Nephrology, Faculty of Medicine and Graduate School of Medicine, Hokkaido University, Sapporo, Japan.
Immune cell metabolism is essential for regulating immune responses, including activation, differentiation, and function. Through glycolysis and oxidative phosphorylation (OXPHOS), metabolism supplies energy and key intermediates for cell growth and proliferation. Importantly, some metabolites generated during these processes act as signaling molecules that influence immune activity.
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