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Hydrothermal evolution optical and electrochemical properties of hierarchical porous hematite nanoarchitectures

机译:分层多孔赤铁矿纳米结构的水热演化光学和电化学性质

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摘要

Hollow or porous hematite (α-Fe2O3) nanoarchitectures have emerged as promising crystals in the advanced materials research. In this contribution, hierarchical mesoporous α-Fe2O3 nanoarchitectures with a pod-like shape were synthesized via a room-temperature coprecipitation of FeCl3 and NaOH solutions, followed by a mild hydrothermal treatment (120°C to 210°C, 12.0 h). A formation mechanism based on the hydrothermal evolution was proposed. β-FeOOH fibrils were assembled by the reaction-limited aggregation first, subsequent and in situ conversion led to compact pod-like α-Fe2O3 nanoarchitectures, and finally high-temperature, long-time hydrothermal treatment caused loose pod-like α-Fe2O3 nanoarchitectures via the Ostwald ripening. The as-synthesized α-Fe2O3 nanoarchitectures exhibit good absorbance within visible regions and also exhibit an improved performance for Li-ion storage with good rate performance, which can be attributed to the porous nature of Fe2O3 nanoarchitectures. This provides a facile, environmentally benign, and low-cost synthesis strategy for α-Fe2O3 crystal growth, indicating the as-prepared α-Fe2O3 nanoarchitectures as potential advanced functional materials for energy storage, gas sensors, photoelectrochemical water splitting, and water treatment.
机译:在高级材料研究中,空心或多孔的赤铁矿(α-Fe2O3)纳米结构已成为有希望的晶体。在此贡献中,通过室温下共沉淀FeCl3和NaOH溶液,然后进行温和的水热处理(120°C至210°C,12.0 h),合成了具有豆荚状的分层介孔α-Fe2O3纳米结构。提出了基于热液演化的形成机理。 β-FeOOH原纤维首先通过反应受限的聚集体组装,随后进行原位转化,形成致密的豆荚状α-Fe2O3纳米结构,最后高温,长时间的水热处理导致豆荚状α-Fe2O3纳米结构松散。通过奥斯特瓦尔德(Ostwald)成熟。刚合成的α-Fe2O3纳米结构在可见光区域内显示出良好的吸收性,并且还具有改善的锂离子存储性能和良好的倍率性能,这可以归因于Fe2O3纳米结构的多孔性。这为α-Fe2O3晶体的生长提供了一种简便,环保,低成本的合成策略,表明制备的α-Fe2O 3 纳米结构可作为潜在的先进功能材料用于储能,气体传感器,光电化学水分解和水处理。

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