Benzopyrene elimination from the environment using graphitic carbon nitride-SnS nanocomposites

纳米复合材料 苯并芘 吸附 化学工程 化学 光催化 傅里叶变换红外光谱 环境修复 石墨氮化碳 动力学 氮化碳 核化学 材料科学 环境化学 苯并(a)芘 催化作用 有机化学 纳米技术 污染 生态学 物理 量子力学 工程类 生物
作者
Devaraj Bharathi,Jintae Lee,Yamini Vinayagam,Manosi Banerjee,Gnanasambandan Ramanathan,Mysoon M. Al‐Ansari,Ganesh Venkatraman,V. Devi Rajeswari
出处
期刊:Chemosphere [Elsevier]
卷期号:352: 141352-141352
标识
DOI:10.1016/j.chemosphere.2024.141352
摘要

Benzopyrene (BaP) stands as a potent polycyclic aromatic hydrocarbon (PAH) molecule, boasting five fused aromatic rings, making its way into the human food chain through soil contamination. The persistent environmental presence of PAHs in soil, attributed to industrial exposure, is primarily due to their low molecular weight and hydrophobic nature. To preemptively address the entry of BaP into the food chain, the application of nanocomposites was identified as an effective remediation strategy. Post-synthesis, comprehensive characterization tests employing techniques such as UV-DRS, XRD, SEM-EDX, FTIR, and DLS unveiled the distinctive features of the g-C3N4-SnS nanocomposites. These nanocomposites exhibited spherical shapes embedded on layers of nanosheets, boasting particle diameters measuring 88.9 nm. Subsequent tests were conducted to assess the efficacy of eliminating benzopyrene from a combination of PAH molecules and g-C3N4-SnS nanocomposites. Varied parameters, including PAH concentration, adsorbent dosage, and suspension pH, were systematically explored. The optimized conditions for the efficient removal of BaP utilizing the g-C3N4-SnS nanocomposite involved 2 μg/mL of benzopyrene, 10 μg/mL of the nanocomposite, and a pH of 5, considering UV light as the irradiation source. The investigation into the mechanism governing BaP elimination closely aligned with batch adsorption results involved a thorough exploration of adsorption kinetics and isotherms. Photocatalytic degradation of benzopyrene was achieved, reaching a maximum of 86 % in 4 h and 36 % in 2 h, with g-C3N4-SnS nanocomposite acting as the catalyst. Further validation through HPLC data confirmed the successful removal of BaP from the soil matrix.
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