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使用半天然姜黄素接枝生物炭/聚丙烯酸复合水凝胶对合成废水和工业废水中阳离子染料去除的综合分析

Comprehensive analysis of cationic dye removal from synthetic and industrial wastewater using a semi-natural curcumin grafted biochar/poly acrylic acid composite hydrogel.

作者信息

Mosaffa Elias, Patel Rishikumar Indravadan, Banerjee Atanu, Basak Biraj B, Oroujzadeh Maryam

机构信息

Dr. K. C. Patel R & D Centre, Charotar University of Science and Technology (CHARUSAT) 388 421 Anand Gujarat India

P D Patel Institute of Applied Sciences, Charotar University of Science and Technology (CHARUSAT) 388 421 Anand Gujarat India.

出版信息

RSC Adv. 2024 Mar 8;14(11):7745-7762. doi: 10.1039/d3ra08521j. eCollection 2024 Feb 29.

Abstract

Polymer composites offer a tailored framework as an exceptional candidate for water treatment due to their tunable chemical structure, porous 3D architecture, physiochemical stability, accessibility, pH-sensitivity and ease of use. In this study, curcumin-engineered biochar is embedded into a cross-linked polyacrylic acid hydrogel matrix using polymerization for developing a semi-natural adsorbent for the removal of cationic dye from an aqueous solution. The physicochemical features of the generated composite hydrogel are significantly influenced by the implementation of curcumin-grafted biochar into the polyacrylic acid substrate. Comprehensive characteristic approaches were employed to explore all aspects of the adsorbent's properties, especially its removal efficacy. The methodical adsorption study was accomplished by monitoring dynamic factors such as pH, adsorbent content, time frame, and initial dye concentration. The presence of the porous aromatized structure of biochar, active oxygen-enrich functional groups (carboxyl, hydroxyl, keto, enol, ether) coupled with the conjugated curcumin structure facilitate the effective establishment of hydrogen bonds, electrostatic interactions, π-π interactions, electron donor-acceptor and charge-assisted H-bonding with the malachite green (MG) and rhodamine B (Rho) molecules. The highest adsorption capacities of MG and Rho reached 521 mg g and 741 mg g respectively, in the range of neutral pH, considering their molecular nature, functionalities, and unique adsorption mechanisms. The isothermal modeling was carried out with Henry, Langmuir, Jovanovic, Freundlich, Temkin, and Koble-Corrigan models to determine the adsorption system. Additionally, the kinetic data were assessed with Bangham, pseudo-first-order, pseudo-second-order, intra-particle, and liquid film diffusion models to ascertain the rate-limiting phase. The Koble-Corrigan and Langmuir isotherm models ( > 0.997) as well as pseudo-second-order ( > 0.998) and Elovich ( = 0.983 and 0.995) kinetics models provide a substantial level of concordance with empirical findings. The analysis of non-linear diffusion models revealed that the Bangham ( > 0.995) pore and liquid film diffusion ( > 0.960) models has major influence on the rate of the adsorption procedure. The binary adsorption test demonstrated higher efficacy of the synthesized adsorbent in the removal of malachite as compared to rhodamine. This study sheds light on the design of a cost-effective semi-natural polymeric composite for treating dye-polluted wastewaters, a major milestone toward environmental and ecological sustainability.

摘要

聚合物复合材料由于其可调节的化学结构、多孔三维结构、物理化学稳定性、可及性、pH敏感性和易用性,提供了一个定制化的框架,是水处理的优秀候选材料。在本研究中,通过聚合反应将姜黄素工程化生物炭嵌入交联聚丙烯酸水凝胶基质中,以开发一种用于从水溶液中去除阳离子染料的半天然吸附剂。将姜黄素接枝生物炭应用于聚丙烯酸基质中,对生成的复合水凝胶的物理化学特性有显著影响。采用了综合的表征方法来探索吸附剂性能的各个方面,特别是其去除效果。通过监测pH值、吸附剂含量、时间范围和初始染料浓度等动态因素,完成了系统的吸附研究。生物炭的多孔芳构化结构、富含活性氧的官能团(羧基、羟基、酮基、烯醇基、醚基)以及共轭姜黄素结构的存在,有助于与孔雀石绿(MG)和罗丹明B(Rho)分子有效地建立氢键、静电相互作用、π-π相互作用、电子供体-受体和电荷辅助氢键。考虑到MG和Rho的分子性质、官能团和独特的吸附机制,在中性pH范围内,它们的最高吸附容量分别达到521 mg/g和741 mg/g。采用亨利、朗缪尔、约万诺维奇、弗伦德利希、坦金和科布尔-科里根模型进行等温线建模,以确定吸附系统。此外,用班汉姆、伪一级、伪二级、颗粒内和液膜扩散模型评估动力学数据,以确定限速阶段。科布尔-科里根和朗缪尔等温线模型(>0.997)以及伪二级(>0.998)和埃洛维奇(=0.983和0.995)动力学模型与实验结果具有高度一致性。非线性扩散模型分析表明,班汉姆(>0.995)孔扩散和液膜扩散(>0.960)模型对吸附过程的速率有主要影响。二元吸附试验表明,合成的吸附剂对孔雀石绿的去除效果比对罗丹明的去除效果更好。本研究为设计一种经济高效的半天然聚合物复合材料处理染料污染废水提供了思路,这是朝着环境和生态可持续性迈出的重要一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7035/10921087/761abcecefbe/d3ra08521j-f1.jpg

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