Fe2O3-graphitic carbon nitride nanocomposites analyzed by XPS

IF 1.6 Q3 PHYSICS, CONDENSED MATTER
Mattia Benedet, Davide Barreca, Gian Andrea Rizzi, Chiara Maccato, Jan-Lucas Wree, Anjana Devi, Alberto Gasparotto
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Abstract

Nanocomposite systems based on iron(III) oxide (Fe2O3) and graphitic carbon nitride (gCN) possess a great potential as photo(electro)catalysts for environmental remediation and energy generation. In this field, a key issue is the fabrication of supported materials directly grown onto suitable substrates and possessing tailored features. In the present study, Fe2O3–gCN nanomaterials are prepared by an innovative two-step strategy, consisting of initial plasma assisted-chemical vapor deposition of iron(III) oxide on conducting glass substrates and subsequent functionalization with low amounts of gCN by a facile electrophoretic deposition process. Attention is dedicated to the use of two different forms of carbon nitride, obtained from melamine or melamine + cyanuric acid, in order to finely tune the resulting material composition. In this work, x-ray photoelectron spectroscopy was used to characterize the pristine Fe2O3 deposit as well as two Fe2O3–gCN composite materials prepared starting from different gCN powders. A detailed analysis of the obtained spectroscopic data reveals the occurrence of a direct electronic interplay between single constituents, dependent on material characteristics. The related results may act as useful guidelines for the design of photo(electro)catalysts endowed with specific properties, of importance for sustainable applications.
fe2o3 -石墨氮化碳纳米复合材料的XPS分析
基于氧化铁(Fe2O3)和石墨氮化碳(gCN)的纳米复合体系作为光(电)催化剂在环境修复和能源生产方面具有很大的潜力。在这个领域,一个关键问题是直接生长在合适的基板上的支撑材料的制造,并具有定制的特征。在本研究中,Fe2O3-gCN纳米材料是通过一种创新的两步策略制备的,包括初始等离子体辅助化学气相沉积铁(III)氧化物在导电玻璃衬底上,随后通过简单的电泳沉积工艺用低量的gCN功能化。注意专门使用两种不同形式的氮化碳,从三聚氰胺或三聚氰胺+三聚氰尿酸中获得,以便精细调整所得材料成分。本文利用x射线光电子能谱对原始的Fe2O3沉积以及由不同gCN粉末制备的两种Fe2O3 - gCN复合材料进行了表征。对获得的光谱数据的详细分析揭示了单个成分之间直接电子相互作用的发生,取决于材料特性。相关结果可为设计具有特定性能的光(电)催化剂提供有用的指导,对可持续应用具有重要意义。
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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来源期刊
Surface Science Spectra
Surface Science Spectra PHYSICS, CONDENSED MATTER-
CiteScore
1.90
自引率
7.70%
发文量
36
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