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Transparent, superhydrophobic, and wear-resistant coatings on glass and polymer substrates using SiO2, ZnO, and ITO nanoparticles.使用 SiO2、ZnO 和 ITO 纳米粒子在玻璃和聚合物基底上制备透明、超疏水和耐磨的涂层。
Langmuir. 2012 Aug 7;28(31):11391-9. doi: 10.1021/la301479c. Epub 2012 Jul 23.
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Transparent, superhydrophobic surfaces from one-step spin coating of hydrophobic nanoparticles.一步旋涂法制备疏水纳米粒子的透明超疏水表面。
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Controlled partial embedding of carbon nanotubes within flexible transparent layers.碳纳米管在柔性透明层内的可控部分嵌入。
Nanotechnology. 2008 Jan 23;19(3):035302. doi: 10.1088/0957-4484/19/03/035302. Epub 2007 Dec 13.
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Reversible tuning of the wettability of carbon nanotube arrays: the effect of ultraviolet/ozone and vacuum pyrolysis treatments.碳纳米管阵列润湿性的可还原调控:紫外/臭氧处理和真空热解处理的影响。
Langmuir. 2011 Jul 19;27(14):9005-11. doi: 10.1021/la201841m. Epub 2011 Jun 27.
5
High-power lithium batteries from functionalized carbon-nanotube electrodes.功能化碳纳米管电极的高功率锂电池。
Nat Nanotechnol. 2010 Jul;5(7):531-7. doi: 10.1038/nnano.2010.116. Epub 2010 Jun 20.
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The role of nano-roughness in antifouling.纳米粗糙度在防污中的作用。
Biofouling. 2009 Nov;25(8):757-67. doi: 10.1080/08927010903165936.
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Micro-, nano- and hierarchical structures for superhydrophobicity, self-cleaning and low adhesion.用于超疏水性、自清洁和低附着力的微纳及分级结构
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Chemical methods for the production of graphenes.用于生产石墨烯的化学方法。
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9
Stable superhydrophobic surface via carbon nanotubes coated with a ZnO thin film.通过涂覆有ZnO薄膜的碳纳米管制备的稳定超疏水表面。
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Applications of carbon nanotubes in drug delivery.碳纳米管在药物递送中的应用。
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用于调节碳纳米管阵列润湿性的干氧化和真空退火处理

Dry oxidation and vacuum annealing treatments for tuning the wetting properties of carbon nanotube arrays.

作者信息

Aria Adrianus Indrat, Gharib Morteza

机构信息

Graduate Aeronautical Laboratories, California Institute of Technology, USA.

出版信息

J Vis Exp. 2013 Apr 15(74):50378. doi: 10.3791/50378.

DOI:10.3791/50378
PMID:23629482
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3660113/
Abstract

In this article, we describe a simple method to reversibly tune the wetting properties of vertically aligned carbon nanotube (CNT) arrays. Here, CNT arrays are defined as densely packed multi-walled carbon nanotubes oriented perpendicular to the growth substrate as a result of a growth process by the standard thermal chemical vapor deposition (CVD) technique.(1,2) These CNT arrays are then exposed to vacuum annealing treatment to make them more hydrophobic or to dry oxidation treatment to render them more hydrophilic. The hydrophobic CNT arrays can be turned hydrophilic by exposing them to dry oxidation treatment, while the hydrophilic CNT arrays can be turned hydrophobic by exposing them to vacuum annealing treatment. Using a combination of both treatments, CNT arrays can be repeatedly switched between hydrophilic and hydrophobic.(2) Therefore, such combination show a very high potential in many industrial and consumer applications, including drug delivery system and high power density supercapacitors.(3-5) The key to vary the wettability of CNT arrays is to control the surface concentration of oxygen adsorbates. Basically oxygen adsorbates can be introduced by exposing the CNT arrays to any oxidation treatment. Here we use dry oxidation treatments, such as oxygen plasma and UV/ozone, to functionalize the surface of CNT with oxygenated functional groups. These oxygenated functional groups allow hydrogen bond between the surface of CNT and water molecules to form, rendering the CNT hydrophilic. To turn them hydrophobic, adsorbed oxygen must be removed from the surface of CNT. Here we employ vacuum annealing treatment to induce oxygen desorption process. CNT arrays with extremely low surface concentration of oxygen adsorbates exhibit a superhydrophobic behavior.

摘要

在本文中,我们描述了一种简单的方法来可逆地调节垂直排列的碳纳米管(CNT)阵列的润湿性。在此,CNT阵列被定义为通过标准热化学气相沉积(CVD)技术生长过程而垂直于生长衬底定向排列的密集堆积的多壁碳纳米管。(1,2)然后将这些CNT阵列进行真空退火处理以使其更疏水,或进行干氧化处理以使其更亲水。疏水性CNT阵列通过进行干氧化处理可变为亲水性,而亲水性CNT阵列通过进行真空退火处理可变为疏水性。通过结合这两种处理方法,CNT阵列可以在亲水和疏水之间反复切换。(2)因此,这种组合在许多工业和消费应用中显示出非常高的潜力,包括药物递送系统和高功率密度超级电容器。(3 - 5)改变CNT阵列润湿性的关键在于控制氧吸附物的表面浓度。基本上,通过将CNT阵列暴露于任何氧化处理都可以引入氧吸附物。在这里,我们使用干氧化处理,如氧等离子体和紫外/臭氧,用含氧官能团对CNT表面进行功能化。这些含氧官能团使CNT表面与水分子之间形成氢键,从而使CNT具有亲水性。要使其疏水,必须从CNT表面去除吸附的氧。在这里,我们采用真空退火处理来诱导氧脱附过程。具有极低氧吸附物表面浓度的CNT阵列表现出超疏水行为。