首页> 外文OA文献 >One-pot template-free synthesis, growth mechanism and enhanced photocatalytic activity of monodisperse (BiO)(2)CO3 hierarchical hollow microspheres self-assembled with single-crystalline nanosheets
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One-pot template-free synthesis, growth mechanism and enhanced photocatalytic activity of monodisperse (BiO)(2)CO3 hierarchical hollow microspheres self-assembled with single-crystalline nanosheets

机译:一锅免模板合成,生长机理和增强的单分散(BiO)(2)CO3分层空心微球与单晶纳米片自组装的光催化活性。

摘要

This work presents a one-pot template-free synthesis, detailed characterization, growth mechanism and application of well-defined uniform monodisperse (BiO)(2)CO3 hierarchical hollow microspheres self-assembled with single-crystalline nanosheets. The synthesis was conducted by hydrothermal treatment of bismuth citrate and sodium carbonate in water. Time-dependent evolutions of phase structure, composition, and morphology were investigated systematically and revealed that the growth mechanism of such novel structures involved a unique multistep pathway. First, near amorphous particles were produced through reaction, nucleation, crystallization, and aggregation processes. Then, stacked embryos of intermediate (BiO)(4)CO3(OH)(2) microspheres with attached particles were produced due to dissolution and recrystallization. Subsequently, stacked uniform solid microspheres with small particles attached on edges were generated by the consumption of particles through Ostwald ripening. The stacked microspheres further grew to form monodisperse hierarchical microspheres with a hole in the center, like flower buds. Finally, uniform monodisperse (BiO)(2)CO3 hierarchical hollow microspheres were produced through layers splitting. The aggregation of the self-assembled nanosheets contributed to the formation of 3D hierarchical architecture containing mesopores, which is favorable for efficient reactants transport and photo-energy harvesting. Furthermore, the band gap structure of (BiO)(2)CO3 was revealed by the experimental method combined with density functional theoretical calculation. As expected, the novel (BiO)(2)CO3 hierarchical hollow microspheres exhibited enhanced photocatalytic activity due to the special hierarchical morphology, exceeding that of (BiO)(2)CO3 particles and commercial P25. The as-prepared uniform (BiO)(2)CO3 microspheres with well-defined hierarchical hollow structures are also ideal candidates for investigating their architecture-dependent performances in other areas, such as solar energy conversion, catalysis, electronics and so on.
机译:这项工作提出了一个单锅无模板的合成,详细的表征,生长机制和明确定义的均匀单分散(BiO)(2)CO3分层空心微球与单晶纳米片自组装的应用。通过在水中对柠檬酸铋和碳酸钠进行水热处理来进行合成。系统地研究了相结构,组成和形态随时间变化的演化过程,发现这种新型结构的生长机理涉及独特的多步路径。首先,通过反应,成核,结晶和聚集过程产生了近乎无定形的颗粒。然后,由于溶解和重结晶,产生了带有附着颗粒的中间(BiO)(4)CO3(OH)(2)微球的堆叠胚。随后,通过奥斯特瓦尔德熟化消耗颗粒产生了堆积的,边缘附着有小颗粒的均匀固体微球。堆叠的微球进一步生长形成单分散的分层微球,其中心有一个孔,如花蕾。最后,通过分层产生了均匀的单分散(BiO)(2)CO3分层空心微球。自组装纳米片的聚集有助于形成包含中孔的3D层次结构,这有利于有效的反应物传输和光能收集。此外,通过实验方法结合密度泛函理论计算揭示了(BiO)(2)CO3的带隙结构。不出所料,新型(BiO)(2)CO3分层中空微球由于特殊的分层形态而表现出增强的光催化活性,超过了(BiO)(2)CO3颗粒和商用P25。制备的具有均匀的分级空心结构的均匀(BiO)(2)CO3微球也是研究其在太阳能转化,催化,电子学等其他领域中与体系结构相关的性能的理想候选者。

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