24小时热门版块排行榜    

查看: 742  |  回复: 4

daixm

新虫 (初入文坛)

[交流] Science Daily 最新文章 Engineered surface unsticks sticky water droplets

https://www.sciencedaily.com/releases/2015/08/150828135409.htm

The lotus effect has inspired many types of liquid repelling surfaces, but tiny water droplets stick to lotus leaf structures. Now, researchers at Penn State have developed the first nano/micro-textured highly slippery surfaces able to outperform lotus leaf-inspired liquid repellent coatings, particularly in situations where the water is in the form of vapor or tiny droplets.

Enhancing the mobility of liquid droplets on rough surfaces has applications ranging from condensation heat transfer for heat exchangers in power plants to more efficient water harvesting in arid regions where collecting fog droplets on coated meshes provides drinking water and irrigation for agriculture to the prevention of icing and frosting on aircraft wings.

"This represents a fundamentally new concept in engineered surfaces," said Tak-Sing Wong, assistant professor of mechanical engineering and a faculty member in the Penn State Materials Research Institute. "Our surfaces combine the unique surface architectures of lotus leaves and pitcher plants, in such a way that these surfaces possess both high surface area and a slippery interface to enhance droplet collection and mobility. Mobility of liquid droplets on rough surfaces is highly dependent on how the liquid wets the surface. We have demonstrated for the first time experimentally that liquid droplets can be highly mobile when in the Wenzel state."

Liquid droplets on rough surfaces come in one of two states, Cassie, in which the liquid partially floats on a layer of air or gas, and Wenzel, in which the droplets are in full contact with the surface, trapping or pinning them. The Wenzel equation was published in 1936 in one of the most highly cited papers in the field; yet until now, it has been extremely challenging to precisely verify the equation experimentally.

"Through careful, systematic analysis, we found that the Wenzel equation does not apply for highly wetting liquids," said Birgitt Boschitsch Stogin, a graduate student in Wong's group and coauthor on a paper titled "Slippery Wenzel State," published in the August 28 online edition of the journal ACS Nano.

"Droplets on conventional rough surfaces are mobile in the Cassie state and pinned in the Wenzel state. The sticky Wenzel state results in many problems in condensation heat transfer, water harvesting and ice removal. Our idea is to solve these problems by enabling Wenzel state droplets to be mobile," said Xianming Dai, a postdoctoral scholar in Wong's group and the lead author on the ACS Nano paper.

In the last decade, tremendous efforts have been devoted to designing rough surfaces that prevent the Cassie-to-Wenzel wetting transition. A key conceptual advance in the current study is that both Cassie and Wenzel state droplets can retain mobility on the slippery rough surface, foregoing the difficult process of preventing the wetting transition.

In order to make Wenzel state droplets mobile, the researchers etched micrometer scale pillars into a silicon surface using photolithography and deep reactive-ion etching, and then created nanoscale textures on the pillars by wet etching. They then infused the nanotextures with a layer of lubricant that completely coated the nanostructures, resulting in greatly reduced pinning of the droplets. The nanostructures also greatly enhanced lubricant retention compared to the microstructured surface alone.

The same design principle can be easily extended to other materials beyond silicon, such as metals, glass, ceramics and plastics. The authors believe this work will open the search for a new, unified model of wetting physics that explains wetting phenomena on rough surfaces such as theirs.

This research was funded by the National Science Foundation CAREER Award and a Graduate Research Fellowship, and the Office of Naval Research (MURI award). The researchers performed their work in the Penn State Nanofabrication Laboratory, part of the National Nanotechnology Infrastructure Network (NNIN), funded by the National Science Foundation. A U.S. provisional patent has been filed for this work. Shikuan Yang, a post-doctoral scholar in Wong's group, also contributed to the work.

Story Source:
The above post is reprinted from materials provided by Penn State Materials Research Institute. Note: Materials may be edited for content and length.

Journal Reference:
Xianming Dai, Birgitt Boschitsch Stogin, Shikuan Yang, Tak-Sing Wong. Slippery Wenzel State. ACS Nano, 2015; 150828101224001 DOI: 10.1021/acsnano.5b04151

[ Last edited by 李加伟 on 2015-9-3 at 14:29 ]
回复此楼
已阅   回复此楼   关注TA 给TA发消息 送TA红花 TA的回帖
祝福
2楼2015-09-01 01:01:37
已阅   回复此楼   关注TA 给TA发消息 送TA红花 TA的回帖
3楼2015-09-01 09:20:16
已阅   回复此楼   关注TA 给TA发消息 送TA红花 TA的回帖

pjstang

木虫 (著名写手)

土问一下:sciencedaily是一个很有名的媒体么?
4楼2015-09-01 13:53:45
已阅   回复此楼   关注TA 给TA发消息 送TA红花 TA的回帖

daixm

新虫 (初入文坛)

引用回帖:
4楼: Originally posted by pjstang at 2015-09-01 13:53:45
土问一下:sciencedaily是一个很有名的媒体么?

应该是全球最有影响力的学术媒体了。

这篇文章还被美国权威的NSF Science360 选为9月1号的 The top story of the day:
https://news.science360.gov/obj/story/48f38db4-6316-4e7f-b77b-1441c129ea7c/engineered-surface-unsticks-sticky-water-droplets

还被其它一些权威学术媒体报道,如:
Phys.Org: https://phys.org/news/2015-08-surface-unsticks-sticky-droplets.html

R&D Magzine:
https://www.rdmag.com/news/2015/08/engineered-surface-unsticks-sticky-water-droplets

Penn State News:
https://news.psu.edu/story/367640/2015/08/31/research/engineered-surface-unsticks-sticky-water-droplets

Futurity:
https://www.futurity.org/hydrophobic-surface-993712-2/

Nanowerk:
https://www.nanowerk.com/nanotechnology-news/newsid=41172.php

ChemEurope:
https://www.chemeurope.com/en/news/154358.html

Iran Daily:
https://newspaper.iran-daily.com/Newspaper/Page/5154/8
5楼2015-09-03 12:00:14
已阅   回复此楼   关注TA 给TA发消息 送TA红花 TA的回帖
相关版块跳转 我要订阅楼主 daixm 的主题更新
普通表情 高级回复 (可上传附件)
最具人气热帖推荐 [查看全部] 作者 回/看 最后发表
[基金申请] FileCode能看出啥? +7 要乐观耀哥 2026-08-10 17/850 2026-08-11 10:50 by 要乐观耀哥
[基金申请] 奇怪,两个人的filecode固定段从头到尾一模一样 +5 布布和一二 2026-08-10 6/300 2026-08-11 10:15 by 医学老男孩
[基金申请] 我的国基提前知道中了,可是同事的操作让我实在接受不了,怎么会有这样的人 +8 家与远方 2026-08-10 13/650 2026-08-11 09:49 by 家与远方
[基金申请] 帮忙看看fileCode +6 wwncly 2026-08-10 11/550 2026-08-11 09:14 by xiaruohan
[基金申请] 基金中了 +15 laoda193707 2026-08-06 15/750 2026-08-11 00:11 by jiafei2190
[基金申请] 关于代码变化问题,想知道的进来 +17 且听虎啸 2026-08-07 24/1200 2026-08-10 18:35 by zhangduo2008
[基金申请] 静等基金结果 +5 gjjjzhong 2026-08-10 16/800 2026-08-10 17:19 by Tide man
[基金申请] 国自然结果 +4 Vierhys 2026-08-10 8/400 2026-08-10 15:06 by Vierhys
[基金申请] 8月时间戳变的,举个手。玩一下,释放压力 +11 archvillain 2026-08-04 13/650 2026-08-10 14:41 by seekfind
[基金申请] 好奇怪的filecode +4 布布和一二 2026-08-08 5/250 2026-08-10 14:20 by 冰心玉壶晴
[基金申请] 2026国自然放榜时间 +9 布布和一二 2026-08-08 9/450 2026-08-10 11:22 by xxxx2020
[基金申请] 面上项目filecode邪修 +5 西山十月 2026-08-09 7/350 2026-08-10 07:32 by 仁砚薪传
[基金申请] fileCode有新解读? +10 Tide man 2026-08-08 18/900 2026-08-09 12:55 by 仁砚薪传
[基金申请] 关于豆爷回答的JTJC与%2F数量 +5 yang182083 2026-08-06 7/350 2026-08-08 18:29 by zhanghaozhu
[基金申请] 国基金的申报应该改成非等额制,评价高的钱多评价低的钱少,但是增加资助率 +7 a089 2026-08-07 7/350 2026-08-08 18:05 by gltch
[基金申请] 关于filecode +4 布布和一二 2026-08-07 7/350 2026-08-07 22:55 by zhanghaozhu
[基金申请] 化学口download_prp&fileCode的固定段好像这几天一直没变,有变的大神么? +3 Tide man 2026-08-07 4/200 2026-08-07 22:39 by Tide man
[基金申请] filecode变化情况 +6 布布和一二 2026-08-07 22/1100 2026-08-07 14:45 by 且听虎啸
[基金申请] 大家散了吧,后缀研究没有意义,别浪费时间了,过好目前的每一天,不要焦虑 +5 Tide man 2026-08-06 7/350 2026-08-07 13:11 by 医学老男孩
[基金申请] 求各位大神看下 100+6 hpkpkpkp 2026-08-05 33/1650 2026-08-06 14:49 by zhiyanjiang
信息提示
请填处理意见