Durable, superhydrophobic, antireflection, and low haze glass surfaces using scalable metal dewetting nanostructuring

被引:70
作者
Infante, Daniel [1 ]
Koch, Karl W. [3 ]
Mazumder, Prantik [3 ]
Tian, Lili [3 ]
Carrilero, Albert [1 ]
Tulli, Domenico [1 ]
Baker, David [3 ]
Pruneri, Valerio [1 ,2 ]
机构
[1] ICFO Inst Ciencies Foton, Barcelona 08860, Spain
[2] ICREA, Barcelona 08010, Spain
[3] Corning Inc, Corning, NY 14831 USA
关键词
nanostructures; surface modification; antireflective; superhydrophobic/philic surfaces; self-assembly; dewetting; HIGH-PERFORMANCE OPTICS; SOLAR-CELLS; LITHOGRAPHY; ELEMENTS; DESIGN;
D O I
10.1007/s12274-013-0320-z
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this paper we report a multifunctional nanostructured surface on glass that, for the first time, combines a wide range of optical, wetting and durability properties, including low omnidirectional reflectivity, low haze, high transmission, superhydrophobicity, oleophobicity, and high mechanical resistance. Nanostructures have been fabricated on a glass surface by reactive ion etching through a nanomask, which is formed by dewetting ultrathin metal films (< 10 nm thickness) subjected to rapid thermal annealing (RTA). The nanostructures strongly reduce the initial surface reflectivity (similar to 4%), to less than 0.4% in the 390-800 nm wavelength range while keeping the haze at low values (< 0.9%). The corresponding water contact angle (theta (c)) is similar to 24.5A degrees, while that on a flat surface is similar to 43.5A degrees. The hydrophilic wetting nanostructure can be changed into a superhydrophobic and oleophobic surface by applying a fluorosilane coating, which achieves contact angles for water and oil of similar to 156.3A degrees and similar to 116.2A degrees, respectively. The multicomponent composition of the substrate (CorningA (R) glass) enables ion exchange through the surface, so that the nanopillars' mechanical robustness increases, as is demonstrated by the negligible changes in surface morphology and optical performance after 5,000-run wipe test. The geometry of the nanoparticles forming the nanomask depends on the metal material, initial metal thickness and RTA parameters. In particular we show that by simply changing the initial thickness of continuous Cu films we can tailor the metal nanoparticles' surface density and size. The developed surface nanostructuring does not require expensive lithography, thus it can be controlled and implemented on an industrial scale, which is crucial for applications.
引用
收藏
页码:429 / 440
页数:12
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