合成氟酸盐稳定银纳米颗粒的动力学及形成机理的电位学研究

V. Litvin, Ю. С. Сметенко, І. О. Озівська
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摘要

纳米银由于其独特的性能和广泛的应用领域而受到人们的积极研究。在这项研究中,银离子与合成的槲皮素衍生的黄腐酸反应得到了纳米银。合成的黄腐酸具有双重功能:银离子的减速剂和形成的纳米粒子的稳定剂。溶液中银纳米粒子的存在通过在400 nm处吸收光谱中存在最大值来证实,这是由于表面等离子体共振现象。用X射线衍射法确定了晶体晶格的参数。根据Scherrer公式计算的平均纳米颗粒尺寸为28 nm。利用电位法研究了银纳米颗粒的形成动力学和机理,实现了对合成过程中银离子消耗的直接和连续控制。确定了该过程的机理取决于介质的pH值。特别是,在高pH值的反应介质中存在非均相机制,而在低pH值的反应介质中存在均相机制。银纳米颗粒的非均相形成机制主要表现为三个阶段:1)试剂混合后形成Ag2O微粒;2)槲皮素合成黄腐酸在形成的Ag2O微粒表面还原Ag+离子,形成非均相成核中心。3) Ag2O微粒完全溶解后,银纳米粒子表面的溶液中Ag+离子的还原(这一过程用Ag+一级动力学描述)。计算了槲皮素黄腐酸在不同阶段形成纳米银的活化参数。用电位法研究了曝气程度对pAg体系变化动力学的影响。
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POTENTIOMETRIC STUDY OF KINETICS AND MECHANISM FORMATION OF SILVER NANOPARTICLES STABILIZED BY SYNTHETIC FULVATES
Silver nanoparticles are actively studied due to their unique properties and wide use in various fields. In this study, silver nanoparticles were obtained by reacting Ag+ ions with synthetic fulvic acids derived from quercetin. Synthetic fulvic acids perform a dual function: a reducer of silver ions and a stabilizer of the formed nanoparticles The presence of silver nanoparticles in the solution is confirmed by the presence of a maximum in the absorption spectrum at 400 nm, which is due to the phenomenon of surface plasmon resonance. The parameters of the crystal lattice were established using the X‑ray diffraction method. The average nanoparticle size calculated by the Scherrer formula is 28 nm. The kinetics and mechanism formation of silver nanoparticles were studied by potentiometry, which allows direct and continuous control of the consumption of silver ions in the synthesis process. It is established that the mechanism of the process depends on the pH of the medium. In particular, at high pH values of the reaction medium there is a heterogeneous mechanism, while at low – homogeneous. The heterogeneous mechanism of formation of silver nanoparticles is characterized by the presence of three stages, in particular: 1) formation of Ag2O microparticles after mixing reagents, 2) reduction of Ag+ ions by synthetic fulvic acids from quercetin on the surface of formed Ag2O microparticles, which are heterogeneous nucleation centers. 3) reduction of Ag+ ions from solution on the surface of silver nanoparticles after complete dissolution of Ag2O microparticles (this process is described by first-order kinetics by Ag+). Activation parameters for different stages of silver nanoparticle formation using quercetin fulvic acids were calculated. A potentiometric study of the influence of the degree of aeration of the medium on the kinetics of changes in the pAg system was performed.
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