Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, Groene Loper 3, Eindhoven, 5612 AE, Netherlands.
Institute for Complex Molecular Systems (ICMS), Eindhoven University of Technology, Groene Loper 3, Eindhoven, 5612 AE, Netherlands.
Adv Mater. 2023 May;35(18):e2209729. doi: 10.1002/adma.202209729. Epub 2023 Feb 20.
Fingertip perspiration is a vital process within human predation, to which the species owes its survival and its biological success. In this paper, the unique human ability of extensive perspiration and controlled friction in self-assembled cholesteric liquid crystals is recreated, mimicking the natural processes that occur in the dermis and epidermis of human skin. This is achieved by inducing porosity in responsive, liquid-bearing material through the controlled-polymerization phase-separation process. The unique topography of human fingerprints is further emulated in the materials by balancing the parallel chirality-induced force and the perpendicular substrate-anchoring force during synthesis. As a result, artificial fingertips are capable of secreting and re-absorbing liquid upon light illumination. By demonstrating the function of the soft material in a tribological aspect, it exhibits a controllable anti-sliding property comparable to human fingertips and subsequently attains a higher degree of biomimicry. This biomimetic fingertip is envisioned being applied in a multitude of fields, ranging from biomedical instruments to interactive, human-like soft robotic devices.
指尖排汗是人类捕食过程中的一个重要环节,物种的生存和生物成功都归功于这个过程。在本文中,我们重新创造了人类在自组装胆甾相液晶中广泛排汗和控制摩擦的独特能力,模拟了发生在人体皮肤真皮和表皮中的自然过程。这是通过在响应性、含液材料中诱导多孔性来实现的,该多孔性是通过控制聚合相分离过程产生的。通过在合成过程中平衡平行手性诱导力和垂直基底锚定力,进一步在材料中模拟了人类指纹的独特形貌。结果表明,人工指尖在光照下能够分泌和再吸收液体。通过在摩擦学方面展示软材料的功能,它表现出可与人类指尖相媲美的可控防滑动特性,从而实现了更高程度的仿生学。这种仿生指尖有望应用于多个领域,从生物医学仪器到互动式、类人软机器人设备。