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用于比色法和安培法检测汞(Hg²⁺)的杯芳烃包覆银纳米颗粒的合成

Synthesis of Calixarene-Capped Silver Nanoparticles for Colorimetric and Amperometric Detection of Mercury (Hg, Hg).

作者信息

Vyas Gaurav, Bhatt Shreya, Paul Parimal

机构信息

Analytical and Environmental Science Division & Centralized Instrument Facility and Academy of Scientific and Innovative Research (AcSIR), CSIR-Central Salt and Marine Chemicals Research Institute, G. B. Marg, Bhavnagar 364002, India.

出版信息

ACS Omega. 2019 Feb 21;4(2):3860-3870. doi: 10.1021/acsomega.8b03299. eCollection 2019 Feb 28.

Abstract

Calixarene-functionalized water dispersible silver nanoparticles have been synthesized and characterized on the basis of UV-vis, IR, X-ray diffraction, and high-resolution transmission electron microscopy analysis, and their sensing properties toward metal ions have been investigated. They selectively detect Hg and Hg in solution and vapor phases, respectively, with distinct color change. Interference study with mixture of metal ions revealed no interference from any other metal ions used in this study. Their mechanism of detection involved Hg-aided displacement of calixarene moiety from the surface of the functionalized nanoparticles, followed by the formation of Ag-Hg amalgam due to interaction of Hg with Ag and also the formation of assembly of Ag nanoparticles by dipole-dipole interaction of the bare-surfaced nanoparticles. Electrochemical study revealed that with the aid of functionalized nanoparticles, Hg can be detected amperometrically with high sensitivity. The detection limits obtained for Hg by UV-vis study and amperometry are 0.5 nM (0.1 ppb) and 10 nM (2 ppb), respectively. The new material has been used to detect Hg in aqueous real sample and Hg in soil sample.

摘要

已合成杯芳烃功能化的水分散性银纳米颗粒,并基于紫外可见光谱、红外光谱、X射线衍射和高分辨率透射电子显微镜分析对其进行了表征,还研究了它们对金属离子的传感特性。它们分别在溶液和气相中选择性地检测汞离子和汞,伴有明显的颜色变化。对金属离子混合物的干扰研究表明,本研究中使用的任何其他金属离子均无干扰。它们的检测机制包括汞辅助杯芳烃部分从功能化纳米颗粒表面的置换,随后由于汞与银的相互作用形成银汞合金,以及裸露表面纳米颗粒通过偶极-偶极相互作用形成银纳米颗粒聚集体。电化学研究表明,借助功能化纳米颗粒,可以高灵敏度地通过安培法检测汞。通过紫外可见光谱研究和安培法获得的汞的检测限分别为0.5 nM(0.1 ppb)和10 nM(2 ppb)。这种新材料已用于检测实际水样中的汞离子和土壤样品中的汞。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a562/6648520/6216067a7dd0/ao-2018-03299x_0013.jpg

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