形貌对ZnO纳米结构阵列润湿性和润湿动力学的影响

IF 0.5 Q4 PHYSICS, APPLIED Latvian Journal of Physics and Technical Sciences Pub Date : 2022-02-01 DOI:10.2478/lpts-2022-0004
V. Gerbreders, M. Krasovska, I. Mihailova, Ē. Sļedevskis, A. Ogurcovs, E. Tamanis, V. Auksmuksts, A. Bulanovs, V. Mizers
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引用次数: 1

摘要

摘要纳米结构形态和尺寸的变化可能导致非常不同的表面润湿性。在本研究中,研究了不同形态参数对ZnO纳米结构层润湿动力学的影响。选择了六种不同的形态来确定ZnO纳米结构的特定润湿过程:纳米针、小直径棒、大直径棒、纳米管、纳米板和普通薄膜。采用传统的固着滴技术和基于电化学阻抗谱的新方法研究了润湿动力学。结果表明,纳米结构ZnO薄膜的表面表现出亲水和疏水润湿行为,这取决于纳米结构的形式、尺寸和取向。ZnO纳米结构阵列是水溶液中电化学和光学传感的一个很有前途的平台。只有在纳米结构层完全润湿的条件下,才能确保传感器工作表面的充分有效使用。因此,重要的是要考虑到纳米结构的特定形态的润湿过程的特性。
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Morphology Influence on Wettability and Wetting Dynamics of ZnO Nanostructure Arrays
Abstract Changes in nanostructure morphology and size may result in very different surface wettability. In this research, the impact of different morphological parameters on the wetting dynamics of ZnO nanostructured layers is studied. Six different morphologies are chosen to determine the specific wetting processes of ZnO nanostructures: nanoneedles, small diameter rods, large diameter rods, nanotubes, nanoplates, and plain thin films. Wetting dynamics is investigated using conventional sessile drop technique and a novel approach based on electrochemical impedance spectroscopy. The results show that the surface of nanostructured ZnO thin films exhibits both hydrophilic and hydrophobic wetting behaviour, depending on nanostructure form, size, and orientation. ZnO nanostructure arrays are a promising platform for electrochemical and optical sensing in aqueous solutions. The full and effective use of the sensor working surface can be ensured only under the condition of complete wetting of the nanostructured layer. Therefore, it is important to take into account the peculiarities of the wetting process of a specific morphology of nanostructures.
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来源期刊
CiteScore
1.50
自引率
16.70%
发文量
41
审稿时长
5 weeks
期刊介绍: Latvian Journal of Physics and Technical Sciences (Latvijas Fizikas un Tehnisko Zinātņu Žurnāls) publishes experimental and theoretical papers containing results not published previously and review articles. Its scope includes Energy and Power, Energy Engineering, Energy Policy and Economics, Physical Sciences, Physics and Applied Physics in Engineering, Astronomy and Spectroscopy.
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