A stable solid slippery surface with thermally assisted self-healing ability

The volatilization, migration and contamination of lubricating fluids has seriously affected the durability of slippery liquid-infused porous surfaces (SLIPSs) and greatly limited their applications. To solve these problems, a stable solid slippery surface composed of paraffin wax and a porous film...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2018, Vol.6 (34), p.16355-1636
Hauptverfasser: Meng, Xiangfu, Wang, Zubin, Wang, Lili, Heng, Liping, Jiang, Lei
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container_end_page 1636
container_issue 34
container_start_page 16355
container_title Journal of materials chemistry. A, Materials for energy and sustainability
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creator Meng, Xiangfu
Wang, Zubin
Wang, Lili
Heng, Liping
Jiang, Lei
description The volatilization, migration and contamination of lubricating fluids has seriously affected the durability of slippery liquid-infused porous surfaces (SLIPSs) and greatly limited their applications. To solve these problems, a stable solid slippery surface composed of paraffin wax and a porous film is reported in this work. Several liquid droplets with different surface tensions can slide on the surface without stain. Compared with SLIPSs, this solid slippery surface exhibits outstanding stability, even when immersed in different pH solutions and contacted with other materials. Significantly, the solid slippery surface can rapidly self-heal from physical damage during the heating-cooling process. The lowest self-healing temperature can be adjusted by tuning the percentage of paraffin wax and liquid paraffin. This work gives a new insight for dealing with the challenges of SLIPSs. A solid slippery surface exhibits outstanding stability even when immersed in different pH solutions and rapid self-healing properties.
doi_str_mv 10.1039/c8ta05886e
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source Royal Society Of Chemistry Journals 2008-
subjects Contamination
Durability
Lubrication
Migration
Paraffin
Paraffin wax
Self healing materials
Surface stability
Volatilization
title A stable solid slippery surface with thermally assisted self-healing ability
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