光催化
矿化(土壤科学)
环境化学
浸出(土壤学)
化学
化学工程
污染物
水处理
整体
化学需氧量
物理吸附
饮用水净化
生物降解
材料科学
光降解
降级(电信)
总有机碳
石墨氮化碳
废物管理
活性炭
废水
比表面积
催化作用
生化需氧量
污染
氮气
污水处理
地表水
溶解有机碳
碳纤维
地下水
制浆造纸工业
地下水修复
作者
J.G. Cuadra,Nuno P.F. Gonçalves,K. Ben Tayeb,Catia Venancio,S. Costa,I. Lopes,T. Trindade,J. Labrincha,Rui M. Novais
标识
DOI:10.1016/j.cej.2025.172457
摘要
The growing demand for sustainable water treatment technologies has spurred interest in structured photocatalytic materials. Herein, we report the first integration of 3D-printed alkali-activated material (AAM) scaffolds with graphitic carbon nitride (g-C₃N₄) for visible-light-driven degradation of emerging organic contaminants. The scaffolds, fabricated by direct ink writing and subsequently functionalized via a PVA-assisted coating, exhibit preserved mesoporosity and uniform g-C₃N₄ coverage. Structural and spectroscopic analyses confirm the successful anchoring of g-C₃N₄ onto the AAM surface, preventing leaching and ensuring long-term reusability. Nitrogen physisorption revealed a moderate decrease in specific surface area (from 90 to 64 m 2 g −1 ) due to partial pore coverage, while maintaining accessible mesoporosity beneficial for mass transfer and interfacial photocatalysis. Under visible-light irradiation, the hybrid monolith achieved 99 % sulfamethoxazole (SMX) degradation and 72.5 % total organic carbon (TOC) mineralization within 210 min using only 1.6 g L −1 of catalyst—surpassing most powdered systems in efficiency-to-dose ratio. Beyond SMX, tests with a quaternary mixture of carbamazepine, ciprofloxacin, and diclofenac confirmed broad-spectrum photocatalytic activity. Quenching and EPR analyses identified •OH, O ₂ •- , and 1 O ₂ as the main reactive oxygen species. Ecotoxicological assays with freshwater microalgae, rotifers, and zebrafish embryos demonstrated a marked reduction in post-treatment toxicity, validating the environmental safety of the process. This reusable and monolithic photocatalytic platform represents a robust, metal-free, and sustainable solution for real-water purification. • 3D-printed alkali-activated scaffolds with g-C 3 N 4 enable visible-light photocatalysis of emerging pharmaceuticals. • Sulfamethoxazole removal reached 99% and mineralization 72.5% TOC in 210 min using only 1.6 g L -1 catalyst. • Structural and spectroscopic data confirmed uniform g-C 3 N 4 anchoring and a stable AAM matrix with negligible leaching. • •OH, O 2 •− , and 1 O 2 were identified as the principal reactive oxygen species driving pollutant degradation. • Freshwater ecotoxicity assays showed marked post-treatment toxicity reduction, supporting environmental safety.
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