Literature DB >> 33955739

Ultrafast Flame-Induced Pyrolysis of Poly(dimethylsiloxane) Foam Materials toward Exceptional Superhydrophobic Surfaces and Reliable Mechanical Robustness.

Guo-Dong Zhang1, Zhi-Hao Wu1, Qiao-Qi Xia1, Yong-Xiang Qu1, Hong-Tao Pan1, Wan-Jun Hu1, Li Zhao1, Kun Cao2, Er-Yu Chen3, Zhou Yuan3, Jie-Feng Gao4, Yiu-Wing Mai5, Long-Cheng Tang1.   

Abstract

Superhydrophobic surfaces are imperative in flexible polymer foams for diverse applications; however, traditional surface coatings on soft skeletons are often fragile and can hardly endure severe deformation, making them unstable and highly susceptible to cyclic loadings. Therefore, it remains a great challenge to balance their mutual exclusiveness of mechanical robustness and surface water repellency on flexible substrates. Herein, we describe how robust superhydrophobic surfaces on soft poly(dimethylsiloxane) (PDMS) foams can be achieved using an extremely simple, ultrafast, and environmentally friendly flame scanning strategy. The ultrafast flame treatment (1-3 s) of PDMS foams produces microwavy and nanosilica rough structures bonded on the soft skeletons, forming robust superhydrophobic surfaces (i.e., water contact angles (WCAs) > 155° and water sliding angles (WSAs) < 5°). The rough surface can be effectively tailored by simply altering the flame scanning speed (2.5-15.0 cm/s) to adjust the thermal pyrolysis of the PDMS molecules. The optimized surfaces display reliable mechanical robustness and excellent water repellency even after 100 cycles of compression of 60% strain, stretching of 100% strain, and bending of 90° and hostile environmental conditions (including acid/salt/alkali conditions, high/low temperatures, UV aging, and harsh cyclic abrasion). Moreover, such flame-induced superhydrophobic surfaces are easily peeled off from ice and can be healable even after severe abrasion cycles. Clearly, the flame scanning strategy provides a facile and versatile approach for fabricating mechanically robust and surface superhydrophobic PDMS foam materials for applications in complex conditions.

Entities:  

Keywords:  hierarchical micro-/nanostructure; mechanical robustness; polymer foam materials; superhydrophobic surface; ultrafast thermal pyrolysis

Year:  2021        PMID: 33955739     DOI: 10.1021/acsami.1c03272

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  3 in total

1.  One-Step Fabrication of Hot-Water-Repellent Surfaces.

Authors:  Yahua Liu; Zhixin Feng; Haiyang Zhan; Wenna Ge; Yuhang Xia; Junqiu Zhang; Shile Feng
Journal:  Biomimetics (Basel)       Date:  2022-06-04

2.  Facile Construction and Fabrication of a Superhydrophobic and Super Oleophilic Stainless Steel Mesh for Separation of Water and Oil.

Authors:  Yinyu Sun; Zhongcheng Ke; Caiyun Shen; Qing Wei; Ruikang Sun; Wei Yang; Zihan Yin
Journal:  Nanomaterials (Basel)       Date:  2022-05-13       Impact factor: 5.719

3.  Green and Rapid Preparation of Fluorosilicone Rubber Foam Materials with Tunable Chemical Resistance for Efficient Oil-Water Separation.

Authors:  Wan-Jun Hu; Qiao-Qi Xia; Hong-Tao Pan; Hai-Yang Chen; Yong-Xiang Qu; Zuan-Yu Chen; Guo-Dong Zhang; Li Zhao; Li-Xiu Gong; Chang-Guo Xue; Long-Cheng Tang
Journal:  Polymers (Basel)       Date:  2022-04-18       Impact factor: 4.967

  3 in total

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