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采用化学碳化柚木木屑制备的新型铁和铁-锆改性活性炭从水溶液中去除砷:等温线、动力学、热力学和穿透曲线建模。

Removal of arsenic from aqueous solution by novel iron and iron-zirconium modified activated carbon derived from chemical carbonization of Tectona grandis sawdust: Isotherm, kinetic, thermodynamic and breakthrough curve modelling.

机构信息

Laboratory of Environmental Nanotechnology and Bioremediation, Department of Environmental Science, Babasaheb Bhimrao Ambedkar University, Lucknow, 226025, India.

Laboratory of Environmental Nanotechnology and Bioremediation, Department of Environmental Science, Babasaheb Bhimrao Ambedkar University, Lucknow, 226025, India.

出版信息

Environ Res. 2021 Sep;200:111431. doi: 10.1016/j.envres.2021.111431. Epub 2021 May 31.

Abstract

The aim of the present study was: development of activated carbon modified with iron (Fe@AC) and modified with iron and zirconium (Fe-Zr@AC) from the Tectona grandis sawdust (TGS) waste biomass and its potential applicability for the removal of As (III) from contaminated water by batch and column mode. The biomass waste was pre-treated with ferric chloride (FeCl) and the mixture of FeCl and zirconium oxide (ZrO) and then pyrolyzed at 500 °C for 2 h. The properties of both bioadsorbents were comprehensively characterized by using Scanning electron microscopy (SEM), Energy dispersive X-ray (EDX), Fourier transform infra-red spectroscopy (FTIR), X-ray diffraction (XRD), Particle Size analysis (PSA), point of zero charge (pH), Brunauer-Emmett-Teller (BET) to prove successful impregnation of the Fe and Zr on the surface of AC of TGS. FTIR analysis clearly indicates the Fe and Fe-Zr complexation on biosorbents surface and biosorption of As (III). The results revealed that maximum As (III) removal was achieved 86.35% by Fe-Zr@AC (3 g/L dose, pH-7.0, temperature-25 °C and concentration 0.5 mg/L). However, maximum removal of As (III) was attained ~75% by Fe@AC (with dose-4g/L, pH-7.0, temperature-25 °C and concentration 0.5 mg/L) at the initial concentration of 0.5 mg/L of As (III). Fe-Zr@AC exhibits higher efficiency with q value 1.206 mg/g than Fe@AC with the q value 0.679 mg/g for the removal of As(III). While in the column study, Fe-Zr@AC exhibited 98.8% removal at flow rate of 5 mL/min and bed height of 5 cm. Biosorption Isotherm and Kinetics were fitted good with Langmuir isotherm (R ≥ 0.99) and followed pseudo-second-order (R ≥ 0.99). The regeneration study indicates that the prepared biosorbents efficiently recycled up to five cycles. Therefore, Fe@AC and Fe-Zr@AC derived from TGS has been showed to be novel, effective, and economical biosorbent. The collective benefits of easy development, good affinity towards As (III), good separability, reusability, and inexpensive of magnetized Fe@AC and Fe-Zr@AC make it a novel biosorbent. The application of Fe-Zr@AC for the removal of As (III) from the water was very efficient its concentration in the solution after treatment was found below the 10 μg/L as per the guideline WHO.

摘要

本研究的目的是

从柚木锯末(TGS)废物生物质中开发用铁(Fe@AC)和铁和锆(Fe-Zr@AC)改性的活性炭,并通过批量和柱模式将其应用于去除受污染水中的砷(III)的潜力。将生物质废物用氯化铁(FeCl)预处理,然后将氯化铁和氧化锆(ZrO)的混合物在 500°C 下热解 2 小时。通过使用扫描电子显微镜(SEM)、能量色散 X 射线(EDX)、傅里叶变换红外光谱(FTIR)、X 射线衍射(XRD)、粒度分析(PSA)、零电荷点(pH)、 Brunauer-Emmett-Teller (BET) 全面表征两种生物吸附剂的特性,以证明铁和锆已成功浸渍到 TGS 活性炭的表面。FTIR 分析清楚地表明了生物吸附剂表面的 Fe 和 Fe-Zr 络合以及 As(III)的生物吸附。结果表明,Fe-Zr@AC(剂量 3g/L、pH-7.0、温度-25°C 和浓度 0.5mg/L)可实现最大 86.35%的 As(III)去除率。然而,在初始 As(III)浓度为 0.5mg/L 时,Fe@AC(剂量 4g/L、pH-7.0、温度-25°C 和浓度 0.5mg/L)可实现最大 75%的 As(III)去除率。Fe-Zr@AC 的 q 值为 1.206mg/g,比 Fe@AC 的 q 值 0.679mg/g 对 As(III)的去除效率更高。在柱研究中,Fe-Zr@AC 在流速为 5mL/min 和床高为 5cm 时表现出 98.8%的去除率。Biosorption 等温线和动力学很好地符合 Langmuir 等温线(R≥0.99)和拟二级动力学(R≥0.99)。再生研究表明,制备的生物吸附剂可在多达五个循环中有效回收。因此,从 TGS 衍生的 Fe@AC 和 Fe-Zr@AC 已被证明是新型、有效且经济的生物吸附剂。磁化的 Fe@AC 和 Fe-Zr@AC 易于开发、对 As(III)具有良好的亲和力、良好的分离性、可重复使用性和价格低廉,这使其成为一种新型的生物吸附剂。Fe-Zr@AC 用于去除水中的 As(III)的应用非常有效,处理后溶液中的浓度被发现低于世界卫生组织规定的 10μg/L。

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