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多功能穹顶形微纳结构的可控合成——生物应用的一种稳健物理途径。

Controlled synthesis of multifunctional dome-shaped micro- and nano-structures a robust physical route for biological applications.

机构信息

Department of Physics and the Institutes of Nanotechnology & Advanced Materials, Bar-Ilan University, Ramat-Gan, 5290002, Israel.

Department of Chemistry and the Institutes of Nanotechnology & Advanced Materials, Bar-Ilan University, Ramat-Gan, 5290002, Israel.

出版信息

J Mater Chem B. 2023 Aug 2;11(30):7094-7102. doi: 10.1039/d2tb02456j.

Abstract

Micro- and nano-particles are elemental for many current and developing technologies. Specifically, these particles are being used extensively in biological studies and applications, which include imaging, drug delivery and therapeutics. Recent advances have led to the development of multifunctional particles, which have the potential to further enhance their effectiveness, enabling novel applications. Therefore, many efforts have been devoted to producing well-defined particles for specific needs. However, the conventional fabrication methodologies used to develop particles are time consuming, making it extremely challenging to fine-tune the properties of the particles for multifunctional applications. Herein, we present a simple and facile method to fabricate dome-shaped micron- and nano-sized particles a robust physical route. The presented method enables particles to be designed using a vast range of materials, with different sizes and compositions. The versatility of this method enables the engineering of multifunctional particles with pre-defined properties that can be adjusted to a specific biological application. We demonstrate the fabrication of dome-shaped particles using physical vapor deposition (PVD) and a polystyrene-bead-monolayer-based mechanical mask. We show domes from several materials and coatings; in particular, we demonstrate the development process for biocompatible magnetic iron oxide domes. We find that our magnetic domes exhibit an FeO structure with a high magnetization saturation. In addition, we examine the biocompatibility of the magnetic domes by performing viability tests and morphological analysis. The ability to design and fabricate micro- and nano-particles upon request in a simple and relatively high-throughput manner opens possibilities for the development of new smart multifunctional particles for both therapeutic and diagnostic applications.

摘要

微纳颗粒对于许多当前和新兴技术至关重要。具体来说,这些颗粒广泛应用于生物研究和应用,包括成像、药物输送和治疗。最近的进展导致了多功能颗粒的发展,这些颗粒有可能进一步提高其效果,从而实现新的应用。因此,许多人致力于生产满足特定需求的定义明确的颗粒。然而,用于开发颗粒的常规制造方法耗时,因此极难微调多功能应用所需的颗粒特性。在这里,我们提出了一种简单而直接的方法来制造圆顶状微米和纳米级颗粒——一种强大的物理途径。所提出的方法可以使用各种材料设计颗粒,具有不同的尺寸和组成。该方法的多功能性使得能够制造具有预定义特性的多功能颗粒,可以根据特定的生物应用进行调整。我们展示了使用物理气相沉积 (PVD) 和基于聚苯乙烯珠单层的机械掩模来制造圆顶状颗粒。我们展示了几种材料和涂层的圆顶,特别是我们展示了具有生物相容性的磁性氧化铁圆顶的开发过程。我们发现我们的磁性圆顶具有高磁化饱和的 FeO 结构。此外,我们通过进行生存能力测试和形态分析来检查磁性圆顶的生物相容性。能够以简单且相对高通量的方式按需设计和制造微纳颗粒,为开发用于治疗和诊断应用的新型智能多功能颗粒开辟了可能性。

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