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用于痕量TNT炸药荧光检测的胺封端ZnS-Mn2+纳米晶体。

Amine-capped ZnS-Mn2+ nanocrystals for fluorescence detection of trace TNT explosive.

作者信息

Tu Renyong, Liu Bianhua, Wang Zhenyang, Gao Daming, Wang Feng, Fang Qunling, Zhang Zhongping

机构信息

Key Laboratory of Biomimetic Sensing and Advanced Robot Technology, Institute of Intelligent Machines, Chinese Academy of Sciences, Hefei, Anhui 230031, China.

出版信息

Anal Chem. 2008 May 1;80(9):3458-65. doi: 10.1021/ac800060f. Epub 2008 Mar 13.

Abstract

Mn2+-doped ZnS nanocrystals with an amine-capping layer have been synthesized and used for the fluorescence detection of ultratrace 2,4,6-trinitrotoluene (TNT) by quenching the strong orange Mn2+ photoluminescence. The organic amine-capped nanocrystals can bind TNT species from solution and atmosphere by the acid-base pairing interaction between electron-rich amino ligands and electron-deficient aromatic rings. The resultant TNT anions bound onto the amino monolayer can efficiently quench the Mn2+ photoluminescence through the electron transfer from the conductive band of ZnS to the lowest unoccupied molecular orbital (LUMO) of TNT anions. The amino ligands provide an amplified response to the binding events of nitroaromatic compounds by the 2- to approximately 5-fold increase in quenching constants. Moreover, a large difference in quenching efficiency was observed for different types of nitroaromatic analytes, dependent on the affinity of nitro analytes to the amino monolayer and their electron-accepting abilities. The amine-capped nanocrystals can sensitively detect down to 1 nM TNT in solution or several parts-per-billion of TNT vapor in atmosphere. The ion-doped nanocrystal sensors reported here show a remarkable air/solution stability, high quantum yield, and strong analyte affinity and, therefore, are well-suited for detecting the ultratrace TNT and distinguishing different nitro compounds.

摘要

已合成了带有胺封端层的Mn2+掺杂ZnS纳米晶体,并通过猝灭强烈的橙色Mn2+光致发光,将其用于超痕量2,4,6-三硝基甲苯(TNT)的荧光检测。有机胺封端的纳米晶体可以通过富电子氨基配体与缺电子芳环之间的酸碱配对相互作用,从溶液和大气中结合TNT物种。结合到氨基单分子层上的所得TNT阴离子可以通过从ZnS导带向TNT阴离子的最低未占分子轨道(LUMO)的电子转移,有效地猝灭Mn2+光致发光。氨基配体通过猝灭常数增加2至约5倍,对硝基芳烃化合物的结合事件提供了放大响应。此外,观察到不同类型的硝基芳烃分析物在猝灭效率上有很大差异,这取决于硝基分析物对氨基单分子层的亲和力及其电子接受能力。胺封端的纳米晶体可以灵敏地检测溶液中低至1 nM的TNT或大气中几ppm的TNT蒸气。本文报道的离子掺杂纳米晶体传感器表现出显著的空气/溶液稳定性、高量子产率和强分析物亲和力,因此非常适合检测超痕量TNT并区分不同的硝基化合物。

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