Wang Fang, Song Le Xin, Teng Yue, Xia Juan, Xu Zhe Yuan, Wang Wei Ping
Department of Chemistry, University of Science and Technology of China Jin Zhai Road 96 Hefei 230026 P. R. China
National Synchrotron Radiation Laboratory, University of Science and Technology of China Hefei 230026 P. R. China.
RSC Adv. 2019 Oct 31;9(61):35372-35383. doi: 10.1039/c9ra07490b.
In this work, a simple one-step hydrothermal method was developed to synthesize high-quality α-FeO nanoparticles with a snowflake-like microstructure. First, a series of binary supramolecular aggregates were prepared by a non-covalent combination between a polymer such as polyvinylpyrrolidone (PVP) and a complex such as potassium ferrocyanide (PF). Then, the aggregates were used as the precursors of the one-step hydrothermal reactions. The snowflake-like nanostructure has six-fold symmetry as a whole, and each petal is symmetric. This synthesis method has the characteristics of simplicity, rapidity, reliance, and high yield, and can be used for creating high-quality α-FeO nanoparticles. Moreover, our results show that the molar ratio of PVP to PF, reaction time and temperature play important roles in the generation of a complete snowflake structure from different angles. Also, the snowflake-like α-FeO nanostructure exhibits a much higher coercivity (2997 Oe) compared to those reported by others, suggesting a strong hysteresis behaviour, which promises potential applications in memory devices, and other fields. Further, the α-FeO nanosnowflakes show a much higher photocatalytic degradation activity for cationic organic dyes such as crystal violet, rhodamine 6G than for anionic dyes such as methyl orange. A possible photocatalytic mechanism was proposed for explaining the selectivity of the photocatalytic oxidation reaction of organic dyes. We believe that this study provides a direct link among coordination compounds of transition metals, their supramolecular aggregates with polymers, and controlled hydrothermal synthesis of high-quality inorganic metal oxide nanomaterials.
在本工作中,开发了一种简单的一步水热法来合成具有雪花状微观结构的高质量α-FeO纳米颗粒。首先,通过聚乙烯吡咯烷酮(PVP)等聚合物与亚铁氰化钾(PF)等配合物之间的非共价结合制备了一系列二元超分子聚集体。然后,将这些聚集体用作一步水热反应的前驱体。雪花状纳米结构整体具有六重对称性,且每片花瓣都是对称的。这种合成方法具有简单、快速、可靠和高产率的特点,可用于制备高质量的α-FeO纳米颗粒。此外,我们的结果表明,PVP与PF的摩尔比、反应时间和温度从不同角度对完整雪花结构的生成起着重要作用。而且,与其他报道的相比,雪花状α-FeO纳米结构表现出更高的矫顽力(2997奥斯特),表明具有强磁滞行为,这为其在存储器件及其他领域的潜在应用带来了希望。此外,α-FeO纳米雪花对阳离子有机染料如结晶紫、罗丹明6G的光催化降解活性比对阴离子染料如甲基橙的光催化降解活性高得多。提出了一种可能的光催化机理来解释有机染料光催化氧化反应的选择性。我们相信,本研究在过渡金属配位化合物、它们与聚合物的超分子聚集体以及高质量无机金属氧化物纳米材料的可控水热合成之间建立了直接联系。