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由微棒稳定的 Pickering 乳液合成的具有刺状磁性的微粒子。

Spiky Magnetic Microparticles Synthesized from Microrod-Stabilized Pickering Emulsion.

机构信息

Department of Chemical and Biomolecular Engineering, University of Pennsylvania, Philadelphia, PA, 19104, USA.

School of Dental Medicine, University of Pennsylvania, Philadelphia, PA, 19104, USA.

出版信息

Small. 2024 Oct;20(42):e2402292. doi: 10.1002/smll.202402292. Epub 2024 Jun 12.

Abstract

Tailoring the microstructure of magnetic microparticles is of vital importance for their applications. Spiky magnetic particles, such as those made from sunflower pollens, have shown promise in single cell treatment and biofilm removal. Synthetic methods that can replicate or extend the functionality of such spiky particles would be advantageous for their widespread utilization. In this work, a wet-chemical method is introduced for spiky magnetic particles that are templated from microrod-stabilized Pickering emulsions. The spiky morphology is generated by the upright attachment of silica microrods at the oil-water interface of oil droplets. Spiky magnetic microparticles with control over the length of the spikes are obtained by dispersing hydrophobic magnetic nanoparticles in the oil phase and photopolymerizing the monomer. The spiky morphology dramatically enhances colloidal stability of these particles in high ionic strength solutions and physiologic media such as human saliva and saline-based biofilm suspension. To demonstrate their utility, the spiky magnetic particles are applied for magnetically controlled removal of oral biofilms and retrieval of bacteria for diagnostic sampling. This method expands the toolbox for engineering microparticle morphology and could promote the fabrication of functional magnetic microrobots.

摘要

调整磁性微球的微观结构对于它们的应用至关重要。例如,由向日葵花粉制成的刺状磁性颗粒在单细胞处理和生物膜去除方面显示出了前景。能够复制或扩展此类刺状颗粒功能的合成方法将有利于它们的广泛应用。在这项工作中,我们介绍了一种湿化学方法,用于制备由微棒稳定的 Pickering 乳液模板化的刺状磁性颗粒。刺状形态是通过在油滴的油水界面处垂直附着二氧化硅微棒而产生的。通过将疏水性磁性纳米颗粒分散在油相中并光聚合单体,可以获得具有控制刺长的刺状磁性微球。这种刺状形态极大地提高了这些颗粒在高离子强度溶液和生理介质(如人唾液和基于盐水的生物膜悬浮液)中的胶体稳定性。为了证明它们的实用性,我们将刺状磁性颗粒应用于磁控去除口腔生物膜和回收细菌进行诊断采样。该方法扩展了用于工程化微球形态的工具包,并可能促进功能性磁性微机器人的制造。

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