Aminopropyl functionalized iron-phyllosilicate (AIP) engineered composite membrane for hazardous emerging pollutant treatment

危险废物 污染物 复合数 废物管理 化学 材料科学 工程类 有机化学 复合材料 生物化学
作者
K.N. Mahadevaprasad,K.N. Mahadevaprasad,D.S. Aditya,Ashesh Mahto,Mahaveer Halakarni,Smitha V. Kamath,Anshu Kumar,Hyeonseok Yoon,S.K. Nataraj
出处
期刊:Journal of Cleaner Production [Elsevier BV]
卷期号:: 142318-142318 被引量:2
标识
DOI:10.1016/j.jclepro.2024.142318
摘要

Catalytic degradation of organic foulants using cost-effective and light-independent catalyst in membrane system is a promising technology in advancing the self-cleaning membranes. In this work, we report AIP-clay as an efficient light-independent catalyst in membrane system to degrade the organic foulants. The characterization of AIP-clay and membrane was performed using FE-SEM, ATR-IR, XPS, zeta potential and contact angle and measurements. The AIP-clay loaded (0.1AIP-PAN) membrane showed an efficient Fenton-based insitu degradation of fouled dyes and SWW both in dark and light condition. Although, membrane exhibited significant self-cleaning capabilities in presence of light, the efficiency was nearly equivalent in dark condition as well, indicating minimal disparity in performance. The membranes remained stable even after multiple cycles of self-cleaning, with no notable loss in flux or rejection ability. The 0.1AIP-PAN membrane performance was further assessed based on the removal capacity of various salts (18% of NaCl and 38% of MgSO4), dyes (MB, MG, CR, EBT and RBr), SWW (>90%) and pharmaceuticals (>80%). In addition, the AIP-clay loaded membrane was studied for its anti-fouling property via long-term study for SWW with 97.7% FRR while retaining the membrane stability even after 216 h. Therefore, these studies demonstrate the potential self-cleaning in both dark and light, long-term stability and high separation performance of the AIP-clay membranes for diverse applications.
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