Zhao Yu, Xie Yi, Zhu Xi, Yan Si, Wang Sunxi
Department of Nanomaterials and Nanochemistry, Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei, Anhui, P.R. China.
Chemistry. 2008;14(5):1601-6. doi: 10.1002/chem.200701053.
Hyperbranched monoclinic BiVO(4) (h-BiVO(4)) has been synthesized on a large scale and with good uniformity by a surfactant-free hydrothermal route. h-BiVO(4) consists of four trunks with branches distributed on opposite sides. From observation of the intermediates at an early stage of the reaction process, it can be seen that during formation h-BiVO(4) has different growth rates along the a, b, and c axes. Based on crystal structure analysis and experimental results, h-BiVO(4) shows preferential growth along the [100] direction, and subsequently, along the [010] and [001] directions. As-synthesized h-BiVO(4) exhibits excellent photocatalytic ability in the photodegradation reaction of an aqueous solution of RB under visible light. Electrochemical measurements predict that h-BiVO(4) possesses high sensitivity to formaldehyde and ethanol gases, favorable discharge capacity, and capacity retention, which indicate potential applications in the fields of sensing devices and lithium-ion batteries.
通过无表面活性剂水热法大规模合成了具有良好均匀性的超支化单斜相BiVO₄(h-BiVO₄)。h-BiVO₄由四个主干组成,分支分布在相对的两侧。通过观察反应过程早期的中间体可以发现,在h-BiVO₄形成过程中,其沿a、b和c轴具有不同的生长速率。基于晶体结构分析和实验结果,h-BiVO₄沿[100]方向优先生长,随后沿[010]和[001]方向生长。合成的h-BiVO₄在可见光下对RB水溶液的光降解反应中表现出优异的光催化能力。电化学测量预测,h-BiVO₄对甲醛和乙醇气体具有高灵敏度、良好的放电容量和容量保持率,这表明其在传感装置和锂离子电池领域具有潜在应用。