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金纳米粒子对微泡稳定性的影响。

Effects of gold nanoparticles on the stability of microbubbles.

机构信息

Institute of Biomedical Engineering, Department of Engineering Science, University of Oxford, Headington, UK.

出版信息

Langmuir. 2012 Oct 2;28(39):13808-15. doi: 10.1021/la302674g. Epub 2012 Sep 19.

Abstract

Surfactant-coated microbubbles are utilized in a wide variety of applications, from wastewater purification to contrast agents in medical ultrasound imaging. In many of these applications, the stability of the microbubbles is crucial to their effectiveness. Controlling this, however, represents a considerable challenge. In this study, the potential for stabilizing microbubbles using solid nanoparticles adsorbed onto their surfaces was explored. A new theoretical model has been developed to describe the influence of interfacially adsorbed solid particles upon the dissolution of a gas bubble in a liquid. The aim of this work was to test experimentally the prediction of the model that the presence of the nanoparticles would inhibit gas diffusion and coalescence/disproportionation, thus increasing the life span of the bubbles. Near-monodisperse microbubbles (100 μm diameter) were prepared using a microfluidic device and coated with a surfactant, with and without the addition of a suspension of spherical gold nanoparticles (15 nm diameter). The experimental results confirmed the theoretical predictions that as the surface concentration of gold nanoparticles increased the bubbles underwent negligible changes in their size and size distribution over a period of 30 days at the ambient temperature and pressure. Under the same conditions, bubbles coated with the same surfactant but no nanoparticles survived only a matter of hours.

摘要

用表面活性剂涂覆的微泡在各种应用中得到广泛应用,从废水净化到医学超声成像中的造影剂。在这些应用中,微泡的稳定性对其效果至关重要。然而,控制这一点代表着相当大的挑战。在这项研究中,探索了利用吸附在其表面上的固体纳米粒子来稳定微泡的可能性。已经开发了一种新的理论模型来描述界面吸附的固体颗粒对气体在液体中气泡溶解的影响。这项工作的目的是通过实验来验证该模型的预测,即纳米粒子的存在会抑制气体扩散和聚并/歧化,从而延长气泡的寿命。使用微流控装置制备了近单分散的微泡(100 μm 直径),并用表面活性剂进行了涂覆,添加或不添加球形金纳米粒子(15 nm 直径)的悬浮液。实验结果证实了理论预测,即在环境温度和压力下,随着金纳米粒子表面浓度的增加,气泡在 30 天内其大小和大小分布几乎没有变化。在相同条件下,用相同的表面活性剂但没有纳米粒子涂覆的气泡仅能存活几个小时。

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