Cezan S Doruk, Aggarwal Aaveg, Li Chuang, Yuan Hang, Palmer Liam C, Olvera de la Cruz Monica, Stupp Samuel I
Department of Materials Science and Engineering, Northwestern University, Evanston, IL 60208.
Center for Bio-Inspired Energy Science, Northwestern University, Evanston, IL 60208.
Proc Natl Acad Sci U S A. 2024 Dec 10;121(50):e2411092121. doi: 10.1073/pnas.2411092121. Epub 2024 Dec 2.
The design of synthetic soft matter capable of emulating the complex behaviors of living organisms, such as sensing and adapting to their environment, remains an important challenge in developing biomimetic materials. Functionalized hydrogels are ideal candidates for such materials since they are highly responsive to their environment and can be operated in water. In this work, we investigate a hybrid bonding hydrogel composed of peptide amphiphile supramolecular nanofibers covalently attached to a photoresponsive network, in which high-aspect-ratio ferromagnetic nanowires are aligned along the length of the sample, designed to swim under oscillating magnetic fields. This hybrid hydrogel swimmer can autonomously swim toward a light source by utilizing photoinduced interactions between supramolecular and covalent networks reminiscent of phototactic swimming in living systems. Using a combination of experimental techniques and a continuum model incorporating photochemistry, magnetoelasticity, and hydrodynamics, we explain the swimming mechanism and predict phototactic behavior. Our work highlights the potential role of hybrid bonding polymers, which leverage the interplay between supramolecular assemblies and covalent networks. We demonstrate how these polymers can be tailored to react dynamically to their environment, paving the way for developing intelligent and autonomous robotic systems.
设计能够模拟生物体复杂行为(如感知和适应环境)的合成软物质,仍然是开发仿生材料的一项重大挑战。功能化水凝胶是这类材料的理想候选者,因为它们对环境高度敏感且可在水中使用。在这项工作中,我们研究了一种混合键合水凝胶,它由共价连接到光响应网络的肽两亲性超分子纳米纤维组成,其中高纵横比的铁磁纳米线沿样品长度排列,设计用于在振荡磁场下游泳。这种混合水凝胶游泳者可以通过利用超分子和共价网络之间的光诱导相互作用自主地向光源游动,这让人联想到生物系统中的趋光性游泳。通过结合实验技术和一个包含光化学、磁弹性和流体动力学的连续介质模型,我们解释了游泳机制并预测了趋光行为。我们的工作突出了混合键合聚合物的潜在作用,它利用了超分子组装体和共价网络之间的相互作用。我们展示了如何对这些聚合物进行定制,使其对环境做出动态反应,为开发智能和自主机器人系统铺平了道路。