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Local Structure and Coordination Define Adsorption in a Model Ir1/Fe3O4 Single‐Atom Catalyst

机译:Ir1 / Fe3O4型单原子催化剂中的局部结构和配位决定了吸附

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摘要

Single‐atom catalysts (SACs) bridge homo‐ and heterogeneous catalysis because the active site is a metal atom coordinated to surface ligands. The local binding environment of the atom should thus strongly influence how reactants adsorb. Now, atomically resolved scanning‐probe microscopy, X‐ray photoelectron spectroscopy, temperature‐programmed desorption, and DFT are used to study how CO binds at different Ir1 sites on a precisely defined Fe3O4(001) support. The two‐ and five‐fold‐coordinated Ir adatoms bind CO more strongly than metallic Ir, and adopt structures consistent with square‐planar IrI and octahedral IrIII complexes, respectively. Ir incorporates into the subsurface already at 450 K, becoming inactive for adsorption. Above 900 K, the Ir adatoms agglomerate to form nanoparticles encapsulated by iron oxide. These results demonstrate the link between SAC systems and coordination complexes, and that incorporation into the support is an important deactivation mechanism.
机译:单原子催化剂(SAC)桥接均相和异相催化,因为活性位是与表面配体配位的金属原子。因此,原子的局部结合环境应强烈影响反应物的吸附方式。现在,原子分辨扫描探针显微镜,X射线光电子能谱,程序升温脱附和DFT用于研究CO如何在精确定义的Fe3O4(001)载体上的不同Ir1位点结合。配位为2或5的Ir原子比金属Ir更牢固地结合了CO,并分别采用与方形Ir I 和八面体Ir III 络合物相一致的结构。 Ir在450 K时已掺入地下,对吸附失去活性。高于900 K,Ir原子会聚结形成被氧化铁包裹的纳米颗粒。这些结果证明了SAC系统与协调系统之间的联系,并且将其纳入支持是一种重要的停用机制。

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