Abstract
Functional ZnO nanostructured surfaces are important in a wide range of
applications. Here we report the simple fabrication of ZnO surface
structures at near room temperature with morphology resembling that of
sea urchins, with densely packed, μm-long, tapered nanoneedles radiating
from the urchin center. The ZnO urchin structures were successfully
formed on several different substrates with high surface density and
coverage, including silicon (Si), glass, polydimethylsiloxane (PDMS),
and copper (Cu) sheets, as well as Si seeded with ZnO nanocrystals.
Time-resolved SEM revealed growth kinetics of the ZnO nanostructures on
Si, capturing the emergence of “infant” urchins at the early growth
stage and subsequent progressive increases in the urchin nanoneedle
length and density, whilst the spiky nanoneedle morphology was retained
throughout the growth. ε-Zn(OH)2 orthorhombic crystals were
also observed alongside the urchins. The crystal structures of the
nanostructures at different growth times were confirmed by synchrotron
X-ray diffraction measurements. On seeded Si substrates, a two-stage
growth mechanism was identified, with a primary growth step of
vertically aligned ZnO nanoneedle arrays preceding the secondary growth
of the urchins atop the nanoneedle array. The antibacterial,
anti-reflective, and wetting functionality of the ZnO urchins—with spiky
nanoneedles and at high surface density—on Si substrates was
demonstrated. First, bacteria colonization was found to be suppressed on
the surface after 24 h incubation in gram-negative Escherichia coli (E. coli)
culture, in contrast to control substrates (bare Si and Si sputtered
with a 20 nm ZnO thin film). Secondly, the ZnO urchin surface,
exhibiting superhydrophilic property with a water contact angle ~ 0°,
could be rendered superhydrophobic with a simple silanization step,
characterized by an apparent water contact angle θ of 159° ± 1.4° and
contact angle hysteresis ∆θ < 7°. The dynamic superhydrophobicity of
the surface was demonstrated by the bouncing-off of a falling 10 μL
water droplet, with a contact time of 15.3 milliseconds (ms), captured
using a high-speed camera. Thirdly, it was shown that the presence of
dense spiky ZnO nanoneedles and urchins on the seeded Si substrate
exhibited a reflectance R < 1% over the wavelength range λ
= 200–800 nm. The ZnO urchins with a unique morphology fabricated via a
simple route at room temperature, and readily implementable on
different substrates, may be further exploited for multifunctional
surfaces and product formulations.
Original language | English |
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Article number | 74 |
Number of pages | 15 |
Journal | Colloids Interfaces |
Volume | 2 |
Issue number | 4 |
Early online date | 14 Dec 2018 |
DOIs | |
Publication status | Published - Dec 2018 |
Keywords
- ZnO urchins
- nanostructured surfaces
- E. coli
- superhydrophilic
- superhydrophobic
- anti-reflective surfaces
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Unusual “coffee rings”: Hierarchical surface patterns from evaporation of a reactive ZnO nanofluid sessile drop
Wasik, P. (Author), Briscoe, W. H. (Supervisor) & Seddon, A. M. (Supervisor), 24 Jul 2019Student thesis: Doctoral Thesis › Doctor of Philosophy (PhD)
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