Yongmei Zheng
Beihang University, China
Title: Bioinspired gradient surfaces with controlling of dynamic wettability
Biography
Biography: Yongmei Zheng
Abstract
Biological surfaces create the enigmatical reality to be contributed to learning of human beings. They run cooperate between of endlessly arranged various-style gradient micro- and nanostructures (MN) that greatly provide with excellent functions via natural evolvement. Such biological surfaces with multi-gradient micro- and nanostructures display unique wetting functions in nature for water collection and water repellency, which have inspired researchers to design originality of materials for promising future. In nature, a combination of multiple gradients in a periodic spindle-knot structure take on surface of spider silk after wetrebuilding process in mist. This structure drives tiny water droplets directionally toward the spindle-knots for highly efficient water collection. Inspired by the roles of gradient MNs in the water collecting ability of spider silk, a series of functional fibers with unique wettability has been designed by various improved techniques such as dip-coating, fluid-coating, tilt-angle coating, electro-spun and self-assembly, to combine the Rayleigh instability theory. The geometrically-engineered thin fibers display a strong water capturing ability than previously thought. The bead-on-string hetero-structured fibers are capable of intelligently responding to environmental changes in humidity. Also a long-range gradient-step spindle-knotted fiber can be driven droplet directionally in a long range. An electro-spun fiber at micro-level can be fabricated by the self-assembly wet-rebuilt process, thus the fiber displays strong hangingdroplet ability. The temperature or photo or roughness-responsive fibers can achieve a controlling on droplet driving in directions, which contribute to water collection in efficiency. Besides inspired by gradient effects on butterfly wing and lotus leaves, the surfaces with ratchet MN, flexible lotus-like MN are fabricated successfully by improved methods, which demonstrate that the gradient MN effect rises up distinctly anti-icing, ice-phobic and de-ice abilities. These multifunctional materials can be designed and fabricated for promising applications such as water-collecting, anti-icing, anti-frosting or anti-fogging properties for practical applications in aerospace, industry and so on.
Recent Publications
- Zheng Y et al (2010) Directional water collection on wetted spider silks. Nature 463:640-643.
- Zheng Y (2015) Bioinspired wettability surfaces: Development in micro- and nanostructures. Pan Stanford Publishing. ISBN 9789814463607. 0-216.
- Wang L, Gong Q, Zhan, S, Jiang L, Zheng Y (2016) Robust Anti-Icing Performance of Flexible Superhydrophobic Surface. Adv. Mater. 28:7729–7735.
- Zhang M, Wang L, Hou Y, Feng S, Zheng Y (2015) Controlled smart anisotropy unidirectional spreading of droplet on fibrous surface. Adv. Mater. 27:5057–5062.