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Transformation of engineered nanomaterials through the prism of silver sulfidation

机译:通过硫化银棱镜改造工程纳米材料

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摘要

Understanding the structure transformation of engineered nanomaterials (ENMs) is a grand measurement challenge, which impacts many aspects of ENMs applications, such as their efficacy, safety, and environmental consequence. To address the significant knowledge gap regarding the fundamental kinetic rate and extent of ENM transformation in the environment, we present a comprehensive and mechanistic structural investigation of the transformation, aggregation, and dissolution behavior of a polyvinylpyrrolidone-coated silver nanoparticle (AgNP) suspension upon sulfidation in moderately reduced hard water with fulvic acid and dissolved Na2S. This reaction is among the most prevalent and industrially and environmentally relevant ENMs transformation. Using ex situ transmission electron microscopy (TEM) and both in situ and ex situ synchrotron-based small angle X-ray scattering (SAXS) and X-ray diffraction (XRD), we find that sulfidation of faceted AgNPs strongly depends on the crystallographic orientation of the facets, with nanometer-scale passivation layers developed on {111} and {100} facets and continuous nucleation and growth on {110} facets. Nanobeam electron diffraction and atomic resolution imaging show Ag and Ag2S domains both possess a high degree of crystalline order, contradicting amorphous structures as previously reported. In situ SAXS/XRD allowed simultaneous determination of the morphological changes and extent of sulfidation of AgNPs. SAXS/XRD results strongly indicate sulfidation follows first-order reaction kinetics without any aggregation. Aided by their size monodispersity, for the first time, using direct, in situ morphology and atomic-structure probes whose results mutually corroborate, we unequivocally determined the sulfidation rate constant of AgNPs under an environmentally relevant condition (~0.013 min−1 for 68 nm diameter AgNPs). A rigorous analysis of the long-term sulfidation product of the AgNPs under different S/Ag ratios using ex situ SAXS/XRD clearly demonstrates that the silver mass in the original AgNP and transformed Ag/Ag2S NP is preserved. This result has important environmental implications, strongly suggesting that Ag+ ions, a known highly effective antimicrobial agent, are not leached into the solution during sulfidation of AgNPs. The combined nondestructive methodology can be extended to unfold the structure transformation pathway and kinetics in a broad range of ENM systems.
机译:了解工程纳米材料(ENM)的结构转变是一项巨大的测量挑战,它会影响ENM应用的许多方面,例如它们的功效,安全性和环境后果。为了解决有关环境中ENM转化的基本动力学速率和程度的重大知识空白,我们对硫化后聚乙烯吡咯烷酮包覆的银纳米颗粒(AgNP)悬浮液的转化,聚集和溶解行为进行了全面的机械结构研究在含有黄腐酸和溶解的Na2S的硬水中适当还原。该反应是最普遍且与工业和环境相关的ENM转化之一。使用异位透射电子显微镜(TEM)以及基于同步加速器的原位和异位小角X射线散射(SAXS)和X射线衍射(XRD),我们发现刻面AgNP的硫化强烈依赖于晶体学取向在{111}和{100}刻面上形成了纳米级的钝化层,并在{110}刻面上形成了连续的成核和生长。纳米束电子衍射和原子分辨率成像显示,Ag和Ag2S域都具有高度的晶序,与先前报道的非晶结构相反。原位SAXS / XRD可同时测定AgNP的形态变化和硫化程度。 SAXS / XRD结果强烈表明硫化反应遵循一级反应动力学,没有任何聚集。借助它们的大小单分散性,我们首次使用直接,原位形态和原子结构探针(其结果相互证实),明确确定了在与环境相关的条件下(约0.013 min -1)AgNP的硫化速率常数用于直径为68 nm的AgNP)。使用异位SAXS / XRD对不同S / Ag比下AgNPs的长期硫化产物的严格分析清楚地表明,原始AgNP和转化的Ag / Ag2S NP中的银质量得以保留。该结果具有重要的环境意义,有力地表明,已知的高效抗菌剂Ag + 离子在AgNP的硫化过程中不会浸出到溶液中。可以扩展组合的非破坏性方法,以在广泛的ENM系统中展现结构转化途径和动力学。

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