首页> 美国卫生研究院文献>Scientific Reports >Fast interfacial charge transfer in α-Fe2O3−δCδ/FeVO4−x+δCx−δ@C bulk heterojunctions with controllable phase content
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Fast interfacial charge transfer in α-Fe2O3−δCδ/FeVO4−x+δCx−δ@C bulk heterojunctions with controllable phase content

机译:具有可控相含量的α-Fe2O3-δCδ/ FeVO4-x +δCx-δ@ C本体异质结中的快速界面电荷转移

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摘要

The novelties in this paper are embodied in the fast interfacial charge transfer in α-Fe2O3−δCδ/FeVO4−x+δCx−δ@C bulk heterojunctions with controllable phase compositions. The carbon source-glucose plays an important role as the connecting bridge between the micelles in the solution, forming interfacial C-O, C-O-Fe and O-Fe-C bonds through dehydration and polymerization reactions. Then the extra VO3 around the FeVO4 colloidal particles can react with unstable Fe(OH)3, resulting the phase transformation from α-Fe2O3 (47.99–7.16%) into FeVO4 (52.01–92.84%), promoting photocarriers’ generation capacities. After final carbonization, a part of C atoms enter into lattices of α-Fe2O3 and FeVO4, forming impurity levels and oxygen vacancies to increase effective light absorptions. Another part of C sources turn into interfacial carbon layers to bring fast charge transfer by decreasing the charge transition resistance (from 53.15 kΩ into 8.29 kΩ) and the surface recombination rate (from 64.07% into 7.59%). The results show that the bulk heterojunction with 90.29% FeVO4 and 9.71% α-Fe2O3 shows ideal light absorption, carriers’ transfer efficiency and available photocatalytic property. In general, the synergistic effect of optimized heterojunction structure, carbon replacing and the interface carbon layers are critical to develop great potential in stable and recoverable use.
机译:本文的新颖性体现在具有可控相组成的α-Fe2O3-δCδ/ FeVO4-x +δCx-δ@ C本体异质结中的快速界面电荷转移。碳源葡萄糖作为溶液中胶束之间的连接桥,通过脱水和聚合反应形成界面C-O,C-O-Fe和O-Fe-C键,起着重要的作用。然后,在FeVO4胶体颗粒周围多余的VO3 -可以与不稳定的Fe(OH)3反应,导致从α-Fe2O3(47.99-7.16%)到FeVO4(52.01-92.84%)的相变,提高光电载体的产生能力。最终碳化后,一部分碳原子进入α-Fe2O3和FeVO4的晶格,形成杂质能级和氧空位,以增加有效的光吸收。 C源的另一部分变成界面碳层,通过降低电荷转移电阻(从53.15kkΩ降低到8.29kkΩ)和表面复合率(从64.07%降低到7.59%)来带来快速的电荷转移。结果表明,具有90.29%的FeVO4和9.71%的α-Fe2O 3 的本体异质结表现出理想的光吸收,载流子转移效率和可用的光催化性能。通常,优化的异质结结构,碳置换和界面碳层的协同效应对于在稳定和可回收使用中发展巨大潜力至关重要。

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