Emani Pavan S, Maddah Hisham A, Rangoonwala Arjun, Che Songwei, Prajapati Aditya, Singh Meenesh R, Gruen Dieter M, Berry Vikas, Behura Sanjay K
Department of Civil and Materials Engineering, University of Illinois at Chicago, 842 West Taylor Street, Chicago, Illinois 60607, United States.
Department of Chemical Engineering, University of Illinois at Chicago, 929 West Taylor Street, Chicago, Illinois 60607, United States.
ACS Appl Mater Interfaces. 2020 Sep 2;12(35):39772-39780. doi: 10.1021/acsami.0c09559. Epub 2020 Aug 20.
Interfacing two-dimensional graphene oxide (GO) platelets with one-dimensional zinc oxide nanorods (ZnO) would create mixed-dimensional heterostructures suitable for modern optoelectronic devices. However, there remains a lack in understanding of interfacial chemistry and wettability in GO-coated ZnO nanorods heterostructures. Here, we propose a hydroxyl-based dissociation-exchange mechanism to understand interfacial interactions responsible for GO adsorption onto ZnO nanorods hydrophobic substrates. The proposed mechanism initiated from mixing GO suspensions with various organics would allow us to overcome the poor wettability (θ ∼ 140.5°) of the superhydrophobic ZnO nanorods to the drop-casted GO. The addition of different classes of organics into the relatively high pH GO suspension with a volumetric ratio of 1:3 (organic-to-GO) is believed to introduce free radicals (-OH and -COOH), which consequently result in enhancing adhesion (chemisorption) between ZnO nanorods and GO platelets. The wettability study shows as high as 75% reduction in the contact angle (θ = 35.5°) when the GO suspension is mixed with alcohols (, ethanol) prior to interfacing with ZnO nanorods. The interfacial chemistry developed here brings forth a scalable tool for designing graphene-coated ZnO heterojunctions for photovoltaics, photocatalysis, biosensors, and UV detectors.
将二维氧化石墨烯(GO)片层与一维氧化锌纳米棒(ZnO)相结合,将产生适用于现代光电器件的混合维度异质结构。然而,对于GO包覆的ZnO纳米棒异质结构中的界面化学和润湿性,仍缺乏了解。在此,我们提出一种基于羟基的解离-交换机制,以理解负责GO吸附到ZnO纳米棒疏水基底上的界面相互作用。从将GO悬浮液与各种有机物混合开始的所提出的机制,将使我们能够克服超疏水ZnO纳米棒对滴铸的GO的不良润湿性(θ ∼ 140.5°)。将不同种类的有机物以1:3(有机物与GO的体积比)添加到相对高pH值的GO悬浮液中,据信会引入自由基(-OH和-COOH),从而增强ZnO纳米棒与GO片层之间的粘附力(化学吸附)。润湿性研究表明,当GO悬浮液在与ZnO纳米棒接触之前与醇类(如乙醇)混合时;接触角(θ = 35.5°)降低高达75%。这里开发的界面化学为设计用于光伏、光催化、生物传感器和紫外探测器的石墨烯包覆的ZnO异质结带来了一种可扩展的工具。