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首页> 外文期刊>Nanotechnology >Label-free, sensitive colorimetric detection of mercury(II) by target-disturbed in situ seeding growth of gold triangular nanoprisms
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Label-free, sensitive colorimetric detection of mercury(II) by target-disturbed in situ seeding growth of gold triangular nanoprisms

机译:无标记,敏感的比色度检测汞(II)原位播种的金三角纳米棱镜的生长

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摘要

Gold nanomaterials have been used extensively in colorimetric detection of mercuric ions (Hg2+) due to their shape- and size-dependent, ultrastrong localized surface plasmon resonance (LSPR). Conventional detection was performed by first synthesizing the nanomaterials, and then applying them to signal-transducing reactions. We herein report a convenient method for detecting Hg2+ based on gold triangular nanoprisms (AuTNPs). During the seeding-growth process, Hg2+ added to the growth solution was co-reduced and deposited on the high-energy facets of the gold seeds, affecting the deposition patterns of the subsequently generated Au-0 and ultimately leading to the formation of defective AuTNPs. Morphological changes were reflected by the in-plane dipole LSPR wavelength shift, which was proportionally related to the concentration of Hg2+. To improve the selectivity, the interference from Ag+ was eliminated by a stepwise preparation-selective precipitation approach. Under the optimized conditions, Hg2+ could be selectively detected with 20 min, with a detection limit of 0.12 nM. Finally, the method was successfully applied to detecting trace Hg2+ in fortified drinking, mineral and rain water samples, with recoveries ranging from 95.17% to 110.6%.
机译:由于它们的形状和尺寸依赖性,超字局部化表面等离子体共振(LSPR),金纳米材料已经广泛用于比色静脉离子(HG2 +)的检测。通过首先合成纳米材料进行常规检测,然后将它们施加到信号转印反应中进行。我们在本文中报告了一种方便的方法,用于基于金三角形纳米载体(Autnps)检测Hg2 +的方法。在播种生长过程中,加入到生长溶液中的HG2 +共同减少并沉积在金子种子的高能谱上,影响随后产生的AU-0的沉积图案,最终导致形成有缺陷的AutNPS 。在平面内偶极LSPR波长偏移反射形态变化,其与HG2 +的浓度成比例。为了改善选择性,通过逐步制备选择性沉淀方法消除了Ag +的干扰。在优化的条件下,可以用20分钟选择地检测HG2 +,检测限为0.12nm。最后,该方法已成功应用于检测痕量HG2 +在加固饮用,矿物和雨水样品中,回收率范围为95.17%至110.6%。

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