posted on 2022-07-21, 09:50authored byLuc The Nguyen, Zhiqing Bai, Jingjing Zhu, Can Gao, Bin Zhang, Jiansheng Guo
The potential applications of textile materials in fog
harvesting
have long been demonstrated. This work designed novel fog harvesters
according to the distinct features of elastic textile threads (ETTs)
to enhance droplet capture, large-droplet growth, and droplet pouring
and improve fog harvesting efficiency. We prepared m@ETTs (modified
ETTs) using three novel chemical and physical methods. First, we prepared
spandex elastic threads with a non-uniform rough surface containing
silica nanoparticles and titanium particles through the sol–gel
triethoxymethylsilane method. Second, we prepared a rubber/polyester
thread with a rough surface by breaking the thread shell with toluene
solution, creating knots on the surface of the rubber core. Third,
we prepared a polyurethane thread with a bumpy superhydrophobic surface
by spraying a tetrafluoroethylene adhesive and silica nanoparticles
on the thread. Furthermore, we connected ETTs to an automatic stretching–recovery
system to obtain auto-ETTs as another group of harvesters. We obtained
auto-i@ETTs by introducing elastic bumps/knots onto the auto-ETT surface.
The fog harvesting efficiencies of m@ETTs were approximately 60–120%
greater than those of the ETTs. The water harvesting rate of the auto-i@ETT
was 2.5 times that of the ETT, with the highest water harvesting rate
of auto-i@ETT reaching 3.35 g/h/cm<sup>2</sup>. Moreover, several
novel principles of droplet behavior and thread elasticity were revealed.
The elastic elongation level of the ETTs was proportional to their
water harvesting efficiency. The stretching–recovery state
of the elastic thread did not influence the water contact angle but
affected the droplet state on the thread surface. The temporary slack/stick
state of adjacent elastic threads on auto-ETTs contributed to droplet
convergence and pouring. Overall, this novel approach demonstrates
the significant potential of elastic threads in fog harvesting applications.