异质结
格子(音乐)
电荷(物理)
材料科学
化学
化学工程
左氧氟沙星
化学物理
分离法
匹配(统计)
戒毒(替代医学)
自组装
表面电荷
纳米技术
作者
Di Zhang,Xiaoming Jian,Yanming Feng,Bohan Yang,Ruoyan Li,Xuanying Jiang,Ziming Li,Wenyu Zhao
标识
DOI:10.1016/j.jcis.2026.141569
摘要
Interfacial lattice commensurability is an underexplored design dimension in heterojunction photocatalysis, despite its centrality to charge-carrier dynamics at solid-solid interfaces. Here, we report the fabrication of BiOBr with vacancy oxygen employing three Bi 2 O 3 polymorphs (α, β, γ) and systematically elucidate the role of interfacial lattice commensurability on photocatalytic performance. The α-Bi 2 O 3 polymorph (space group P2₁/c; a = 7.79 Å, b = 7.87 Å, c = 5.48 Å) exhibits near-ideal lattice commensurability with the tetragonal BiOBr (102) plane with a lattice mismatch of 3.1% along the x direction. High-resolution transmission electron microscopy (HRTEM) provides a direct view of a coherent heterointerface with uninterrupted crystallographic registry between α-Bi 2 O 3 (121) ( d = 0.329 nm) and BiOBr (102) ( d = 0.285 nm). The shifts in X-ray photoelectron spectroscopy (XPS) binding energy and density functional theory (DFT) calculations together confirm an S-scheme charge-transfer route, which is driven by an internal electric field resulting from the difference in work functions (Φ BiOBr = 5.39 eV compared to Φ α-Bi2O3 = 5.06 eV). The optimized α-BOB composite achieves pseudo-first-order levofloxacin (LEV) degradation with a rate constant of k = 0.0207 min −1 under visible-light irradiation, representing a 5.2-fold improvement over BiOBr. The total organic carbon (TOC) removal efficiency of 68.3% after 120 min irradiation confirms that a significant portion of the LEV carbon skeleton is mineralized to CO 2 . Radical scavenging experiments establish a dominant reactive species hierarchy of •O 2 − > h + > 1 O 2 > •OH. The average carrier lifetime for α-BOB, as revealed by time-resolved photoluminescence, is 4.13 ns, compared to 3.85 ns for β-BOB and 3.68 ns for γ-BOB, suggesting less defect-mediated recombination at the coherent interface. Liquid chromatography–mass spectrometry (LC-MS) analysis reveals ten degradation intermediates along three mineralization pathways, and Ecological Structure Activity Relationships (ECOSAR) verification shows a gradual detoxification to harmless metabolites. The study demonstrates that lattice matching based on crystal phase is a sensible design principle for developing efficient S-scheme photocatalysts.
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