Monney Baptiste, Kilchoer Cédric, Weder Christoph
Adolphe Merkle Institute, University of Fribourg, Chemin des Verdiers 4, CH-1700 Fribourg, Switzerland.
ACS Polym Au. 2021 Nov 8;2(1):50-58. doi: 10.1021/acspolymersau.1c00037. eCollection 2022 Feb 9.
Water-responsive polymers, which enable the design of objects whose mechanical properties or shape can be altered upon moderate swelling, are useful for a broad range of applications. However, the limited processing options of materials that exhibit useful switchable mechanical properties generally restricted their application to objects having a simple geometry. Here we show that this problem can be overcome by using a negative photoresist approach in which a linear hydrophilic polymer is converted into a highly transparent cross-linked polymer network. The photolithographic process allows the facile production of objects of complex shape and permits programming of the cross-link density, the extent of aqueous swelling, and thereby the stiffness and refractive index under physiological conditions over a wide range and with high spatial resolution. Our findings validate a straightforward route to fabricate mechanically adaptive devices for a variety of (biomedical) uses, notably optogenetic implants whose overall shape, mechanical contrast, and optical channels can all be defined by photolithography.
水响应性聚合物能够设计出在适度溶胀时其机械性能或形状可发生改变的物体,在广泛的应用中很有用。然而,具有有用的可切换机械性能的材料的加工选项有限,这通常将它们的应用限制于具有简单几何形状的物体。在此我们表明,通过使用负性光刻胶方法可以克服这个问题,其中线性亲水性聚合物被转化为高度透明的交联聚合物网络。光刻工艺允许轻松生产复杂形状的物体,并允许对交联密度、水溶胀程度进行编程,从而在生理条件下在很宽的范围内以高空间分辨率对刚度和折射率进行编程。我们的研究结果验证了一种直接的途径,可制造用于各种(生物医学)用途的机械适应性装置,特别是光遗传学植入物,其整体形状、机械对比度和光学通道都可以通过光刻来定义。