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首页> 外文期刊>ACS Omega >Substrate Grain-Dependent Chemistry of Carburized Planar Anodic TiO2 on Polycrystalline Ti
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Substrate Grain-Dependent Chemistry of Carburized Planar Anodic TiO2 on Polycrystalline Ti

机译:多晶Ti上渗碳平面阳极TiO 2 的基体晶粒化学

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摘要

Mixtures or composites of titania and carbon have gained considerable research interest as innovative catalyst supports for low- and intermediate-temperature proton-exchange membrane fuel cells. For applications in electrocatalysis, variations in the local physicochemical properties of the employed materials can have significant effects on their behavior as catalyst supports. To assess microscopic heterogeneities in composition, structure, and morphology, a microscopic multitechnique approach is required. In this work, compact anodic TiO_(2) films on planar polycrystalline Ti substrates are converted into carbon/titania composites or multiphase titanium oxycarbides through carbothermal treatment in an acetylene/argon atmosphere in a flow reactor. The local chemical composition, structure, and morphology of the converted films are studied with scanning photoelectron microscopy, micro-Raman spectroscopy, and scanning electron microscopy and are related with the crystallographic orientations of the Ti substrate grains by means of electron backscatter diffraction. Different annealing temperatures, ranging from 550 to 850 °C, are found to yield different substrate grain-dependent chemical compositions, structures, and morphologies. The present study reveals individual time scales for the carbothermal conversion and subsequent surface re-oxidation on substrate grains of a given orientation. Furthermore, it demonstrates the power of a microscopic multitechnique approach for studying polycrystalline heterogeneous materials for electrocatalytic applications.
机译:二氧化钛和碳的混合物或复合材料作为低温和中温质子交换膜燃料电池的创新催化剂载体,已经引起了广泛的研究兴趣。为了用于电催化,所用材料的局部物理化学性质的变化可对其作为催化剂载体的行为产生重大影响。为了评估组成,结构和形态的微观异质性,需要采用微观多技术方法。在这项工作中,通过在流动反应器中的乙炔/氩气气氛中进行碳热处理,将平面多晶Ti衬底上的致密阳极TiO_(2)膜转化为碳/二氧化钛复合材料或多相碳氧化钛。用扫描光电子显微镜,显微拉曼光谱和扫描电子显微镜研究了转化膜的局部化学组成,结构和形态,并通过电子背散射衍射研究了Ti基体晶粒的晶体取向。发现不同的退火温度范围为550至850°C,可产生不同的基体颗粒依赖性化学成分,结构和形貌。本研究揭示了给定取向的底物晶粒上碳热转化和随后的表面再氧化的各个时间尺度。此外,它展示了微观多技术方法在研究电催化应用中的多晶非均质材料方面的能力。

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