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尼龙6纳米纤维膜上致癌性烷基化熏蒸剂的比色检测。第二部分:2-二乙氨基乙基修饰的传感器基质的自催化作用以提高灵敏度。

Colorimetric Detection of Carcinogenic Alkylating Fumigants on a Nylon 6 Nanofibrous Membrane. Part II: Self-Catalysis of 2-Diethylaminoethyl-Modified Sensor Matrix for Improvement of Sensitivity.

作者信息

Tang Peixin, Nguyen Ngoc Thi-Hong, Lo Jeane Gladys, Sun Gang

出版信息

ACS Appl Mater Interfaces. 2019 Apr 10;11(14):13632-13641. doi: 10.1021/acsami.9b03147. Epub 2019 Mar 29.

Abstract

A nylon 6 nanofibrous membrane (N6NFM) was covalently modified with 2-diethylaminoethylchloride (DEAE-Cl) to provide self-catalytic functions to facilitate the formation of color compounds in reactions of 4-( p-nitrobenzyl)pyridine with alkylating fumigants. The 2-diethylaminoethyl group on the DEAE-Cl-modified N6NFM (DEAE@N6NFM) enables effective elimination of hydrohalogenic acids from intermediates that were formed from reactions between the alkylating fumigants and NBP and consequently improve their detection sensitivities, especially for 1,3-dichloropropene at room temperature. Moreover, DEAE@N6NFM can be recycled and reused multiple times without obvious loss in the sensing functions or any noticeable material damage. The naked-eye detection limits of the sensor to 1,3-dichloropropene, methyl iodide, and methyl bromide on DEAE@N6NFM are improved to 0.2, 0.1, and 0.1 ppm, respectively, which are much lower than their occupational exposure limits. The reaction mechanism is demonstrated through a computational method by analyzing the thermodynamics of the reaction. The modification of DEAE@N6NFM also provides an insight into the development of functionalized materials with improved reactivities for versatile sensing applications.

摘要

用2-二乙氨基乙基氯(DEAE-Cl)对尼龙6纳米纤维膜(N6NFM)进行共价修饰,以提供自催化功能,促进4-(对硝基苄基)吡啶与烷基化熏蒸剂反应中颜色化合物的形成。DEAE-Cl修饰的N6NFM(DEAE@N6NFM)上的2-二乙氨基乙基基团能够有效消除烷基化熏蒸剂与NBP反应形成的中间体中的氢卤酸,从而提高它们的检测灵敏度,尤其是在室温下对1,3-二氯丙烯的检测灵敏度。此外,DEAE@N6NFM可以多次循环使用,而传感功能没有明显损失,材料也没有任何明显损坏。DEAE@N6NFM传感器对1,3-二氯丙烯、甲基碘和甲基溴的肉眼检测限分别提高到0.2、0.1和0.1 ppm,远低于它们的职业接触限值。通过分析反应的热力学,用计算方法证明了反应机理。DEAE@N6NFM的修饰也为开发具有更高反应活性的功能化材料以用于多功能传感应用提供了思路。

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