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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Colorimetric determination and recycling of Hg2+ based on etching-induced morphology transformation from hollow AuAg nanocages to nanoboxes
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Colorimetric determination and recycling of Hg2+ based on etching-induced morphology transformation from hollow AuAg nanocages to nanoboxes

机译:基于从空心Auag纳米植物到纳米氧肟的蚀刻诱导的形态转化的比色测定和回收HG2 +的再循环

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摘要

Herein, we propose a selective and simple colorimetric sensing approach for the determination of Hg2+ ions based on bimetallic AuAg nanocages with partial hollow cavity and several pinholes on the wall, wherein the residual Ag atoms existing inside this AuAg nanocages can be directly etched by Hg2+ and the generated Hg depositing on inner surface of nanocages induces the morphology transformation from hollow AuAg nanocages to closed nanoboxes which consists of an AuAg shell and Hg core. This morphology transformation of "nanocage-to-nanobox" not only extends the detection range of Hg2+, but also cleans the Hg2+ in solutions by enriching it into the nanoboxes. With increasing Hg2+ concentrations, the blue shift of localized surface plasmon resonance (LSPR) peak position with multicolor changing from light-blue to light-brown is great for colorimetric determination of Hg2+. Under optimal conditions, the colorimetric sensing shows a linear response to Hg2+ ranging from 0.03 to 35 mM with a detection limit of 10 nM. Besides, interference study and real samples detection applying lake and tap water demonstrated that Hg2+ can be specifically and practically detected by utilizing this method. (c) 2020 Elsevier B.V. All rights reserved.
机译:在此,我们提出了一种选择性和简单的比色感测方法,用于基于具有部分中空腔的双金属腔和几个针孔的基于双金属AuAg纳米的Hg2 +离子测定,其中存在于该Auag纳米内部的残留的Ag原子通过Hg2 +直接蚀刻纳米内部表面上的产生的Hg沉积诱导中空Auag纳米物体的形态转化为封闭的纳米氧氧掩模,其由Auag壳和Hg核心组成。这种形态转化为“纳米血清至纳米框”的变化不仅延伸了Hg2 +的检测范围,而且通过富集纳米氧化剂来清洁溶液中的HG2 +。随着HG2 +浓度的增加,局部表面等离子体共振(LSPR)峰值位置的蓝色偏移与浅棕色到浅棕色的多色变化对于HG2 +的比色测定非常重要。在最佳条件下,比色感测显示到HG2 +的线性响应,范围为0.03至35mm,检测限为10nm。此外,干扰研究和实际样品检测应用湖泊和自来水证明了HG2 +可以通过利用该方法具体和实际地检测。 (c)2020 Elsevier B.v.保留所有权利。

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