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Well-ordered polymer nano-fibers with self-cleaning property by disturbing crystallization process.


ABSTRACT: Bionic self-cleaning surfaces with well-ordered polymer nano-fibers are firstly fabricated by disturbing crystallization during one-step coating-curing process. Orderly thin (100 nm) and long (5-10 ?m) polymer nano-fibers with a certain direction are fabricated by external macroscopic force (F blow) interference introduced by H2 gas flow, leading to superior superhydrophobicity with a water contact angle (WCA) of 170° and a water sliding angle (WSA) of 0-1°. In contrast, nano-wires and nano-bridges (1-8 ?m in length/10-80 nm in width) are generated by "spinning/stretching" under internal microscopic force (F T) interference due to significant temperature difference in the non-uniform cooling medium. The findings provide a novel theoretical basis for controllable polymer "bionic lotus" surface and will further promote practical application in many engineering fields such as drag-reduction and anti-icing.

SUBMITTER: Yang Q 

PROVIDER: S-EPMC4106910 | biostudies-literature | 2014

REPOSITORIES: biostudies-literature

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Well-ordered polymer nano-fibers with self-cleaning property by disturbing crystallization process.

Yang Qin Q   Luo Zhuangzhu Z   Tan Sheng S   Luo Yimin Y   Wang Yunjiao Y   Zhang Zhaozhu Z   Liu Weimin W  

Nanoscale research letters 20140715 1


Bionic self-cleaning surfaces with well-ordered polymer nano-fibers are firstly fabricated by disturbing crystallization during one-step coating-curing process. Orderly thin (100 nm) and long (5-10 μm) polymer nano-fibers with a certain direction are fabricated by external macroscopic force (F blow) interference introduced by H2 gas flow, leading to superior superhydrophobicity with a water contact angle (WCA) of 170° and a water sliding angle (WSA) of 0-1°. In contrast, nano-wires and nano-brid  ...[more]

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