Trindade Ana Catarina
CENIMAT|i3N, Department of Materials Science, School of Science and Technology, NOVA University of Lisbon, 2829-516 Caparica, Portugal.
Atlântica, Instituto Universitário, Fábrica da Pólvora de Barcarena, 2730-036 Barcarena, Portugal.
Polymers (Basel). 2024 Jun 27;16(13):1835. doi: 10.3390/polym16131835.
Colloidal particle research has witnessed significant advancements in the past century, resulting in a plethora of studies, novel applications, and beneficial products. This review article presents a cost-effective and low-tech method for producing Janus elastomeric particles of varied geometries, including planar films, spherical particles, and cylindrical fibers, utilizing a single elastomeric material and easily accessible chemicals. Different surface textures are attained through strain application or solvent-induced swelling, featuring well-defined wavelengths ranging from sub-microns to millimeters and offering easy adjustability. Such versatility renders these particles potentially invaluable for medical applications, especially in bacterial adhesion studies. The coexistence of "young" regions (smooth, with a small surface area) and "old" regions (wrinkled, with a large surface area) within the same material opens up avenues for biomimetic materials endowed with additional functionalities; for example, a Janus micromanipulator where micro- or nano-sized objects are grasped and transported by an array of wrinkled particles, facilitating precise release at designated locations through wrinkle pattern adjustments. This article underscores the versatility and potential applications of Janus elastomeric particles while highlighting the intriguing prospects of biomimetic materials with controlled surface textures.
胶体颗粒研究在过去一个世纪取得了重大进展,催生了大量的研究、新颖的应用和有益的产品。这篇综述文章介绍了一种经济高效且技术含量低的方法,该方法利用单一弹性体材料和易于获取的化学物质来制备具有多种几何形状的Janus弹性体颗粒,包括平面薄膜、球形颗粒和圆柱形纤维。通过施加应变或溶剂诱导溶胀可获得不同的表面纹理,其特征在于具有从亚微米到毫米的明确波长范围,并且易于调节。这种多功能性使得这些颗粒在医学应用中具有潜在的巨大价值,特别是在细菌粘附研究中。同一材料中“年轻”区域(光滑,表面积小)和“老”区域(有皱纹,表面积大)的共存为具有附加功能的仿生材料开辟了道路;例如,一种Janus微操纵器,其中微米或纳米尺寸的物体由一系列有皱纹的颗粒抓取和运输,通过调整皱纹图案便于在指定位置精确释放。本文强调了Janus弹性体颗粒的多功能性和潜在应用,同时突出了具有可控表面纹理的仿生材料的有趣前景。