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用于从水溶液中同时检测和去除砷(III)的多功能纳米杂化材料。

Multifunctional nanohybrid for simultaneous detection and removal of Arsenic(III) from aqueous solutions.

机构信息

Interdisciplinary Centre for Water Research (ICWaR), Indian Institute of Science, Bangalore, 560012, India.

Department of Material Engineering, Indian Institute of Science, Bangalore, 560012, India.

出版信息

Chemosphere. 2022 Feb;289:133101. doi: 10.1016/j.chemosphere.2021.133101. Epub 2021 Dec 1.

Abstract

Herein, for the adsorption and detection of As (III), multifunctional nanohybrid have been synthesized using a solvothermal approach. Structural and functional characterizations confirmed the impregnation of the ZnO over graphene oxide. Nanohybrid exhibits a remarkable q (maximum adsorption capacity) of 8.17 mg/g, at an adsorbent dose of 3 g/L and pH of 8.23. Higher adsorption with nanohybrid was attributed to a large BET surface area of 32.950 m/g. The chemical nature and adsorption behaviour of As(III) on ZnO-GO were studied by fitting the data with various adsorption isotherms (Langmuir & Freundlich) and kinetics models (six models). It is observed from the findings that removal of As(III) with ZnO-GO nanocomposite appears to be technically feasible with high removal efficiency. The feasibility of the nanocomposite to function as a sensor for the detection of As(III) was also evaluated. The fabricated sensor could detect As(III) with a lower limit of detection of 0.24 μM and linear range up to 80 μM. Overall, this study is significant in nanohybrid as a multifunctional composite for the adsorption and detection of As (III) from wastewater.

摘要

在此,通过溶剂热法合成了多功能纳米杂化材料,用于吸附和检测 As(III)。结构和功能表征证实了 ZnO 浸渍在氧化石墨烯上。纳米杂化材料在吸附剂用量为 3 g/L、pH 值为 8.23 时,表现出 8.17mg/g 的显著 q 值(最大吸附容量)。与纳米杂化材料相比,更高的吸附性归因于其 32.950m/g 的大 BET 比表面积。通过拟合各种吸附等温线(Langmuir 和 Freundlich)和动力学模型(六种模型)研究了 ZnO-GO 上 As(III)的化学性质和吸附行为。从研究结果可以看出,用 ZnO-GO 纳米复合材料去除 As(III)在技术上是可行的,去除效率很高。还评估了纳米复合材料作为检测 As(III)传感器的可行性。所制备的传感器可以检测到低至 0.24 μM 的 As(III),线性范围高达 80 μM。总的来说,这项研究对于纳米杂化材料作为一种从废水中吸附和检测 As(III)的多功能复合材料具有重要意义。

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