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一种基于新型杯[4]芳烃的 QCM 传感器,可在室温下实现对甲醛的灵敏、选择性和高性能传感。

One novel calix[4]arene based QCM sensor for sensitive, selective and high performance-sensing of formaldehyde at room temperature.

机构信息

Konya Technical University, Department of Chemical Engineering, 42130, Konya, Turkey.

出版信息

Talanta. 2020 May 1;211:120725. doi: 10.1016/j.talanta.2020.120725. Epub 2020 Jan 8.

Abstract

This work designs the synthesis of a novel amino morpholine schiff base functionalized calix[4]arene cage (SCC), its deposition onto Quartz Crystal Microbalance (QCM) crystal surface, and usage for the selective detecting of formaldehyde (HCHO). The SCC modified QCM sensor has been characterized by contact angle measurements and microscopy images. Initial experiments revealed that the frequency response decreased significantly which means that there was a good interaction between the SCC molecules and HCHO. The proposed sensor exhibited a linear response towards HCHO in different concentrations ranging from 1.85 to 9.25 ppm, having the high sensitivity (S) and low limit of detection (LOD) being 18.324 Hz/ppm and 0.67 ppm, respectively. Furthermore, the adsorption behavior and mechanism of HCHO onto the QCM sensor were investigated for this sensing system and the adsorption data exhibited a good correlation with the Freundlich and Langmuir-Freundlich adsorption models in terms of the regression coefficient. The QCM sensor showed outstanding selective performance to HCHO among %97 RH and some a number of interfering volatile organic compounds (VOCs) such as chloroform, dichloromethane, acetone, n-hexane, methanol, xylene, and ammonia. Thus, real-time, sensitive, selective and effective recognition of HCHO by the sensor can be explained some adsorption mechanisms such as size-fit concept, three-dimensional structures of molecules and interaction between moieties of the sensible film layer and analyte molecules such as hydrogen bonding interactions.

摘要

本工作设计了一种新型的氨基吗啉席夫碱功能化杯[4]芳烃笼(SCC)的合成,将其沉积在石英晶体微天平(QCM)晶体表面,并用于选择性检测甲醛(HCHO)。SCC 修饰的 QCM 传感器已通过接触角测量和显微镜图像进行了表征。初步实验表明,频率响应显著降低,这意味着 SCC 分子与 HCHO 之间存在良好的相互作用。该传感器对不同浓度范围为 1.85 至 9.25 ppm 的 HCHO 表现出线性响应,具有高灵敏度(S)和低检测限(LOD),分别为 18.324 Hz/ppm 和 0.67 ppm。此外,还研究了该传感系统中 HCHO 在 QCM 传感器上的吸附行为和机制,吸附数据在回归系数方面与 Freundlich 和 Langmuir-Freundlich 吸附模型具有良好的相关性。QCM 传感器在 97%RH 和一些干扰挥发性有机化合物(VOCs)如氯仿、二氯甲烷、丙酮、正己烷、甲醇、二甲苯和氨中对 HCHO 表现出出色的选择性性能。因此,可以通过一些吸附机制来解释传感器对 HCHO 的实时、灵敏、选择性和有效识别,例如尺寸适配概念、分子的三维结构以及敏感膜层的部分与分析物分子之间的相互作用,如氢键相互作用。

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