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首页> 外文期刊>Advanced Functional Materials >Core-Shell Nanoparticles: Characterizing Multifunctional Materials beyond Imaging-Distinguishing and Quantifying Perfect and Broken Shells
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Core-Shell Nanoparticles: Characterizing Multifunctional Materials beyond Imaging-Distinguishing and Quantifying Perfect and Broken Shells

机译:核-壳纳米粒子:表征多功能材料,超越成像区分和定量完美和破碎的壳

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摘要

Core-shell nanoparticles (NPs) are amongst the most promising candidates in the development of new functional materials. Their fabrication and characterization are challenging, in particular when thin and intact shells are needed. To date no technique has been available that differentiates between intact and broken or cracked shells. Here a method is presented to distinguish and quantify these types of shells in a single cyclic voltammetry experiment by using the different electrochemical reactivities of the core and the shell material. A simple comparison of the charge measured during the stripping of the core material before and after the removal of the shell makes it possible to determine the quality of the shells and to estimate their thickness. As a proof-of-concept two multifunctional examples of core-shell NPs, Fe3O4@Au and Au@SnO2, are used. This general and original method can be applied whenever core and shell materials show different redox properties. Because billions of NPs are probed simultaneously and at a low cost, this method is a convenient new screening tool for the development of new multifunctional core-shell materials and is hence a powerful complementary technique or even an alternative to the state-of-the-art characterization of core-shell NPs by TEM.
机译:核壳纳米粒子(NPs)是新功能材料开发中最有希望的候选者之一。它们的制造和特性具有挑战性,特别是在需要薄而完整的外壳时。迄今为止,还没有可用的技术来区分完整的和破裂的或破裂的外壳。这里提出了一种通过使用核和壳材料的不同电化学反应性,在单次循环伏安法实验中区分和量化这些类型的壳的方法。在去除壳之前和之后剥离芯材期间测量的电荷的简单比较使得可以确定壳的质量并估计壳的厚度。作为概念验证,使用了两个核心壳NP的多功能实例Fe3O4 @ Au和Au @ SnO2。只要核和壳材料显示不同的氧化还原特性,就可以使用这种常规方法。由于数十亿个NP同时被低成本检测,因此该方法是开发新型多功能核-壳材料的便捷新筛查工具,因此是一种强大的补充技术,甚至可以替代现有技术。核-壳纳米颗粒的TEM表征

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