Ju Jie, Yao Xi, Hou Xu, Liu Qihan, Zhang Yu Shrike, Khademhosseini Ali
Biomaterials Innovation Research Center, Division of Engineering in Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Cambridge, MA 02139.
School of Engineering and Applied Sciences, Kavli Institute for Bionano Science and Technology, Harvard University, Cambridge, MA 02138.
J Mater Chem A Mater. 2017 Aug 21;5(31):16273-16280. doi: 10.1039/C6TA11133E. Epub 2017 Mar 23.
Superhydrophobic surface simultaneously possessing exceptional stretchability, robustness, and non-fluorination is highly desirable in applications ranging from wearable devices to artificial skins. While conventional superhydrophobic surfaces typically feature stretchability, robustness, or non-fluorination individually, co-existence of all these features still remains a great challenge. Here we report a multi-performance superhydrophobic surface achieved through incorporating hydrophilic micro-sized particles with pre-stretched silicone elastomer. The commercial silicone elastomer (Ecoflex) endowed the resulting surface with high stretchability; the densely packed micro-sized particles in multi-layers contributed to the preservation of the large surface roughness even under large strains; and the physical encapsulation of the microparticles by silicone elastomer due to the capillary dragging effect and the chemical interaction between the hydrophilic silica and the elastomer gave rise to the robust and non-fluorinated superhydrophobicity. It was demonstrated that the as-prepared fluorine-free surface could preserve the superhydrophobicity under repeated stretching-relaxing cycles. Most importantly, the surface's superhydrophobicity can be well maintained after severe rubbing process, indicating wear-resistance. Our novel superhydrophobic surface integrating multiple key properties, i.e. stretchability, robustness, and non-fluorination, is expected to provide unique advantages for a wide range of applications in biomedicine, energy, and electronics.
同时具备卓越的拉伸性、坚固性和无氟化特性的超疏水表面,在从可穿戴设备到人造皮肤等广泛应用中具有很高的需求。虽然传统的超疏水表面通常分别具有拉伸性、坚固性或无氟化特性,但要使所有这些特性同时存在仍然是一个巨大的挑战。在此,我们报告了一种通过将亲水性微米级颗粒与预拉伸的硅橡胶弹性体相结合而实现的多性能超疏水表面。商用硅橡胶弹性体(Ecoflex)赋予所得表面高拉伸性;多层中紧密堆积的微米级颗粒有助于即使在大应变下也能保持较大的表面粗糙度;由于毛细管拖拽效应,硅橡胶弹性体对微粒的物理包封以及亲水性二氧化硅与弹性体之间的化学相互作用产生了坚固且无氟化的超疏水性。结果表明,所制备的无氟表面在反复的拉伸 - 松弛循环下能够保持超疏水性。最重要的是,经过剧烈摩擦过程后,表面的超疏水性仍能得到很好的保持,表明具有耐磨性。我们这种集成了拉伸性、坚固性和无氟化等多种关键特性的新型超疏水表面,有望在生物医学、能源和电子等广泛应用中提供独特优势。