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Surface Functionalization of Montmorillonite with Chitosan and the Role of Surface Properties on Its Adsorptive Performance: A Comparative Study on Mycotoxins Adsorption

机译:用壳聚糖的蒙脱石表面官能化及表面性质对吸附性能的作用:霉菌毒素吸附的比较研究

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Understanding surface and interfacial information, which has a close relationship to the structures and properties of materials, helps guide the design of materials for specific applications. This study focuses on the surface functionalization of montmorillonite (Mt) with chitosan (CTS) and exploring the role of surface properties on its adsorptive performance. Two prototypical products, namely, 180-Htc@Mt and 250-Htc@Mt, were fabricated via the hydrothermal method at 180 and 250 degrees C, respectively. Field emission scanning electron microscopy revealed that hydrothermal carbon (Htc) derived from CTS anchored on the surface of Mt uniformly with a spherical morphology. The introduction of Htc endowed the surface of Mt with abundant hydroxy, amine, and amide groups; organic carbon; developed porosity; and hydrophobic interfacial property. Hydrothermal temperature has huge impacts on the surface system, and smaller particles (average size of 27 vs 53 nm) with deeper carbonization, higher content of carbonaceous and nitrogenous functional groups, more developed porosity (66.149 vs 39.434 m(2)/g of specific surface area, 0.115 vs 0.090 cm(3)/g of pore volume), and slightly decreased hydrophobicity can be readily achieved at a higher temperature. The incoming surface protonated amine and amide functional groups show an ion-dipolar interaction to polar aflatoxin B-1 (AFB(1)), and the increased organic carbon content as well as interfacial hydrophobicity generate a hydrophobic interaction to weak polar zearalenone (ZER). Consequently, the surface functionalization affords Mt enhanced adsorption capacity for AFB(1), approximately two times compared with Mt, and superior adsorption ability for ZER (10 mg/g). The present work provides sufficient evidence of "surface directs application" of Mt, which encourages researchers to focus on studies of the surface science of clay minerals.
机译:了解表面和界面信息,它与材料的结构和性质密切相关,有助于指导用于特定应用的材料的设计。该研究侧重于甲基菌(CTS)的蒙脱石(MT)的表面官能化,并探讨表面性质对其吸附性能的作用。两个原型产品,即180-HTC @ MT和250-HTC @ MT,分别在180和250摄氏度下通过水热法制造。场发射扫描电子显微镜显示,衍生自CTS的水热碳(HTC)均匀地与球形形态均匀地悬停在MT的表面上。 HTC的引入赋予MT的表面丰富的羟基,胺和酰胺群;有机碳;开发的孔隙;和疏水性界面性质。水热温度对表面系统产生巨大影响,较小的颗粒(平均尺寸为27 Vs 53nm),具有更深的碳化,更高的碳质和含氮官能团,更突出的孔隙率(66.149 Vs 39.434m(2)/ g特异性表面积,0.115 Vs 0.090cm(3)/ g的孔体积),并且可以在较高温度下容易地实现稍微降低疏水性。进入的表面质子化胺和酰胺官能团显示离子 - 偶极酶与极性黄曲霉毒素B-1(AFB(1))的相互作用,并且增加的有机碳含量以及界面疏水性产生疏水相互作用,以弱极性酸碱酮(ZER) 。因此,表面官能化为AFB(1)的增强型吸附容量提供了MT,与MT相比约两次,以及Zer(10mg / g)的优异吸附能力。本工作提供了足够的“表面指导申请”的充分证据,鼓励研究人员专注于粘土矿物学表面科学的研究。

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