Department of Chemistry, School of Advanced Sciences, Vellore Institute of Technology (VIT), Vellore, Tamil Nadu, 632014, India.
Anal Bioanal Chem. 2021 May;413(12):3177-3191. doi: 10.1007/s00216-021-03255-1. Epub 2021 Mar 6.
The article demonstrates the design of two solid-state sensors for the capturing of industrially relevant ultra-trace Co(II) ions using porous monolithic silica and polymer templates. The mesoporous silica reveals high surface area and voluminous pore dimensions that ensures homogeneous anchoring of 4-((5-(allylthio)-1,3,4-thiadiazol-2-yl)diazenyl)benzene-1,3-diol, as the chromoionophore. We report a first of its kind solid-state macro-/meso-porous polymer monolithic optical sensor from a monomeric chromoionophore, i.e., 2-(4-butylphenyl)diazenyl)-2-hydroxybenzylidene)hydrazine-1-carbothioamide. The monolithic solid-state sensors are characterized using HR-TEM-SAED, FE-SEM-EDAX, p-XRD, XPS, Si/C CPMAS NMR, FT-IR, TGA, and BET/BJH analysis. The electron microscopic images reveal a highly ordered hexagonal mesoporous network of honeycomb pattern for silica monolith, and a long-range macroporous framework with mesoporous channels for polymer monolith. The sensors offer exclusive ion-selectivity and sensitivity for trace cobalt ions, through a concentration proportionate visual color transition, with a response kinetics of ≤ 5 min. The optimization of ion-sensing performance reveals an excellent detection limit of 0.29 and 0.15 ppb for Co(II), using silica- and polymer-based monolithic sensors, respectively. The proposed sensors are tested with industrial wastewater and spent Li-ion batteries, which reveals a superior cobalt ion capturing efficiency of ≥ 99.2% (RSD: ≤ 2.07%).
本文展示了两种使用多孔整体硅和聚合物模板捕获工业相关超痕量 Co(II)离子的固态传感器的设计。介孔硅具有高比表面积和大体积孔尺寸,确保了 4-((5-(烯丙基硫代)-1,3,4-噻二唑-2-基)重氮基)苯-1,3-二醇作为显色离子对的均匀锚固。我们报告了首例由单体显色离子对,即 2-(4-丁基苯基)重氮基)-2-羟基苯亚甲基)肼-1-甲硫酰胺,制备的固态大/介孔聚合物整体光学传感器。整体固态传感器采用 HR-TEM-SAED、FE-SEM-EDAX、p-XRD、XPS、Si/C CPMAS NMR、FT-IR、TGA 和 BET/BJH 分析进行了表征。电子显微镜图像显示,硅质整体呈高度有序的六方介孔蜂窝状网络,而聚合物整体则具有长程大孔骨架和介孔通道。传感器通过浓度比例的视觉颜色转变,提供对痕量钴离子的专属离子选择性和灵敏度,响应动力学≤5 min。通过优化离子传感性能,使用硅基和聚合物基整体传感器分别获得了 0.29 和 0.15 ppb 的优异检测限。提出的传感器经过工业废水和废旧锂离子电池的测试,显示出≥99.2%(RSD:≤2.07%)的优异钴离子捕获效率。