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金纳米粒子合成过程中的轻微 pH 波动会影响柠檬酸还原法的性能。

Slight pH Fluctuations in the Gold Nanoparticle Synthesis Process Influence the Performance of the Citrate Reduction Method.

机构信息

Facultad de Ingeniería y Tecnología, Universidad San Sebastián, Lientur 1457, Concepción 4080871, Chile.

Facultad de Ciencias de la Salud, Universidad San Sebastián, Lientur 1457, Concepción 4080871, Chile.

出版信息

Sensors (Basel). 2018 Jul 12;18(7):2246. doi: 10.3390/s18072246.

Abstract

Gold nanoparticles (AuNPs) are currently under intense investigation for biomedical and biotechnology applications, thanks to their ease in preparation, stability, biocompatibility, multiple surface functionalities, and size-dependent optical properties. The most commonly used method for AuNP synthesis in aqueous solution is the reduction of tetrachloroauric acid (HAuCl₄) with trisodium citrate. We have observed variations in the pH and in the concentration of the gold colloidal suspension synthesized under standard conditions, verifying a reduction in the reaction yield by around 46% from pH 5.3 (2.4 nM) to pH 4.7 (1.29 nM). Citrate-capped AuNPs were characterized by UV-visible spectroscopy, TEM, EDS, and zeta-potential measurements, revealing a linear correlation between pH and the concentration of the generated AuNPs. This result can be attributed to the adverse effect of protons both on citrate oxidation and on citrate adsorption onto the gold surface, which is required to form the stabilization layer. Overall, this study provides insight into the effect of the pH over the synthesis performance of the method, which would be of particular interest from the point of view of large-scale manufacturing processes.

摘要

金纳米粒子(AuNPs)由于其易于制备、稳定性、生物相容性、多种表面功能以及尺寸依赖性的光学性质,目前正在生物医学和生物技术应用中受到强烈关注。在水溶液中合成 AuNP 的最常用方法是用柠檬酸三钠还原四氯金酸(HAuCl₄)。我们观察到在标准条件下合成的金胶体悬浮液的 pH 值和浓度发生了变化,证实反应产率从 pH 5.3(2.4 nM)降低到 pH 4.7(1.29 nM),降低了约 46%。用紫外-可见光谱、TEM、EDS 和zeta 电位测量对柠檬酸封端的 AuNPs 进行了表征,结果表明 pH 值与生成的 AuNPs 的浓度之间存在线性相关性。这一结果可以归因于质子对柠檬酸氧化和柠檬酸在金表面吸附的不利影响,这对于形成稳定层是必需的。总的来说,这项研究深入了解了 pH 值对该方法合成性能的影响,这从大规模制造工艺的角度来看是特别有趣的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8686/6068536/52a77a9da05a/sensors-18-02246-g001.jpg

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