控制氧化石墨烯在铝中的掺杂率,实现高电气性能和氧还原反应

IF 5.9 3区 材料科学 Q2 CHEMISTRY, PHYSICAL FlatChem Pub Date : 2024-01-13 DOI:10.1016/j.flatc.2024.100608
Jin Young Oh , Bo-Kyeong Choi , Dong Wook Lee , Liu Yang , Dae-Shik Seo
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引用次数: 0

摘要

刷涂法的优点是能够简单快速地生产薄膜。本研究介绍了一种利用溶胶-凝胶法,通过刷涂含有掺杂在 Al2O3 中的石墨烯的溶液来生产薄膜的方法。氧化石墨烯(GO)适用于室温下带隙值约为 1.7 eV 的半导体,根据掺杂比例分析了薄膜的特性。首先,通过 X 射线光电子能谱测量来分析薄膜表面的化学成分。由于石墨烯是一种碳异构体,随着 GO 掺杂浓度的增加,C-C 键强度也在增加,这证实了氧空位的特征。此外,还进行了拉曼分析,以分析石墨烯中存在缺陷的化合物分子团的浓度。之后,通过原子力显微镜测量,随着石墨烯掺杂率的增加,平均粗糙度从 1.785 增加到 33.67,残余直流电压也增加了约 48.42%,极性锚定能也增加了约 16.33%。此外,还进行了响应时间-透射率测量,以测量薄膜的电光特性,结果表明薄膜具有优异的 Vth 值和稳定的响应速度。此外,带隙分析也证明了结果的正确性。最后,通过偏振光学显微镜和前倾角测量确认了薄膜表面液晶分子的排列程度,并通过透射率测量证明了薄膜适用于显示器件。因此,GO:Al2O3 混合薄膜是太阳能、二次电池和下一代液晶显示器对准薄膜的理想候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Controlled doping rates of graphene oxide in aluminum for high electrical performance and oxygen reduction reaction

The brush coating method allows the advantage of being able to produce thin films simply and quickly. This study introduces a method for thin-film production by brushing a solution containing graphene doped in Al2O3 using the sol–gel method. Graphene oxide (GO) is suitable for semiconductors with bandgap values of about 1.7 eV at room temperature, and the characteristics of the thin films were analyzed according to the doping ratio. First, X-ray photoelectron spectroscopy measurements were obtained to analyze the chemical composition of the thin-film surface. Since graphene is a carbon isomer, the characteristic of oxygen vacancies was confirmed by the increasing C–C bond intensity with increasing GO doping concentration. In addition, Raman analysis was performed to analyze the concentration of molecular groups of compounds for defects in graphene. Thereafter, through atomic force microscopy measurements, as the graphene doping ratio increased, the average roughness increased from 1.785 to 33.67, the residual DC voltage also increased by about 48.42 %, and the polar anchoring energy also increased by about 16.33 %. In addition, response-time–transmittance measurements were performed to measure the electro-optical properties of the thin film, and excellent Vth and stable response speed were obtained. Additionally, the validity of the results was supported through bandgap analysis. Finally, the degree of alignment of liquid–crystal molecules on the film surface was confirmed by polarized optical microscopy and pretilt angle measurements, and the suitability of the thin film for display devices was shown via transmittance measurements. As a result, GO:Al2O3 hybrid thin film is an excellent candidate for use as an alignment film for solar energy, secondary batteries, and next-generation liquid crystal displays.

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来源期刊
FlatChem
FlatChem Multiple-
CiteScore
8.40
自引率
6.50%
发文量
104
审稿时长
26 days
期刊介绍: FlatChem - Chemistry of Flat Materials, a new voice in the community, publishes original and significant, cutting-edge research related to the chemistry of graphene and related 2D & layered materials. The overall aim of the journal is to combine the chemistry and applications of these materials, where the submission of communications, full papers, and concepts should contain chemistry in a materials context, which can be both experimental and/or theoretical. In addition to original research articles, FlatChem also offers reviews, minireviews, highlights and perspectives on the future of this research area with the scientific leaders in fields related to Flat Materials. Topics of interest include, but are not limited to, the following: -Design, synthesis, applications and investigation of graphene, graphene related materials and other 2D & layered materials (for example Silicene, Germanene, Phosphorene, MXenes, Boron nitride, Transition metal dichalcogenides) -Characterization of these materials using all forms of spectroscopy and microscopy techniques -Chemical modification or functionalization and dispersion of these materials, as well as interactions with other materials -Exploring the surface chemistry of these materials for applications in: Sensors or detectors in electrochemical/Lab on a Chip devices, Composite materials, Membranes, Environment technology, Catalysis for energy storage and conversion (for example fuel cells, supercapacitors, batteries, hydrogen storage), Biomedical technology (drug delivery, biosensing, bioimaging)
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