纳米颗粒
电子顺磁共振
顺磁性
材料科学
化学物理
晶体缺陷
密度泛函理论
粒子(生态学)
掺杂剂
纳米技术
化学
兴奋剂
结晶学
计算化学
核磁共振
凝聚态物理
地质学
物理
海洋学
光电子学
作者
Michael J. Elser,Ellie Neige,Thomas Berger,Mario Chiesa,Elio Giamello,Keith P. McKenna,Thomas Risse,Oliver Diwald
标识
DOI:10.1021/acs.jpcc.3c00430
摘要
Particle attachment and neck formation inside TiO2 nanoparticle networks determine materials performance in sensing, photo-electrochemistry, and catalysis. Nanoparticle necks can feature point defects with potential impact on the separation and recombination of photogenerated charges. Here, we investigated with electron paramagnetic resonance a point defect that traps electrons and predominantly forms in aggregated TiO2 nanoparticle systems. The associated paramagnetic center resonates in the g factor range between g = 2.0018 and 2.0028. Structure characterization and electron paramagnetic resonance data suggest that during materials processing, the paramagnetic electron center accumulates in the region of nanoparticle necks, where O2 adsorption and condensation can occur at cryogenic temperatures. Complementary density functional theory calculations reveal that residual carbon atoms, which potentially originate from synthesis, can substitute oxygen ions in the anionic sublattice, where they trap one or two electrons that mainly localize at the carbon. Their emergence upon particle neck formation is explained by the synthesis- and/or processing-induced particle attachment and aggregation facilitating carbon atom incorporation into the lattice. This study represents a substantial advance in linking dopants, point defects, and their spectroscopic fingerprints to microstructural features of oxide nanomaterials.
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