Lattice Engineering in Hydroxyapatite Enables Direct Photocatalytic Synthesis of C 4 Products from CO 2

材料科学 密度泛函理论 光催化 拉曼光谱 带隙 催化作用 空位缺陷 化学物理 离解(化学) 光化学 介电谱 载流子 电化学 吸附 电子能带结构 光电子学 纳米技术 化学工程 分子 电子 选择性 太阳能 光谱学 极化(电化学) 纳米颗粒 晶体结构 态密度 电子结构 热传导 碳纳米管 储能
作者
Marc Arnau,Isabel Teixidó,Pau Turón,Carlos Alemán,Jordi Sans
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (52): 70621-70633
标识
DOI:10.1021/acsami.5c19539
摘要

High Resolution Image Download MS PowerPoint Slide Amid the burst of carbon dioxide (CO 2 ) capture and conversion technologies, research prioritizing industrially feasible catalysts is vital to minimize climate change effects. In the present work, permanently polarized hydroxyapatite-based biphasic systems have been strategically designed through vacancy engineering and a thermally stimulated polarization (TSP) process, achieving a 15% selectivity toward C 3 –C 4 products through a single-step CO 2 continuous-flow reaction (CO 2 -to-C 3+ ) under solar light irradiation and mild reaction conditions. To elucidate the underlying catalytic mechanism, extensive experimental characterization has been performed in combination with theoretical density functional theory (DFT) calculations. More specifically, Raman spectroscopy, X-ray diffraction, and high-resolution transmission electron microscopy have been used for structural characterization, and electrochemical impedance spectroscopy studies have been performed to determine charge conduction customization. On the other hand, DFT calculations have been employed to determine the photocatalytic contribution by determining the density of states and band diagrams. The results have been further supported by UV–vis experimental measurements, facilitating the elucidation of the mechanisms behind the photoexcited electrons through band gap trap state generation. Finally, additional adsorption energy studies, combined with Bader charge analysis and Nudge elastic band calculations, have allowed the identification of the binding sites responsible for C 3+ molecule growth as far as the CO 2 dissociation pathway and respective energy barrier. These results highlight the role of the crystal lattice vacancies in the CO 2 bond-cleavage process and represent a huge step toward the design of efficient and scalable catalysts for CO 2 -to-C 3+ production.
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