Zhu Ting, Li Ong Wei, Zhu Liangliang, Wei Ho Ghim
Department of Electrical and Computer Engineering, National University of Singapore, 4 Engineering Drive 3, 117583, Singapore.
Engineering Science Programme, National University of Singapore, 9 Engineering Drive 1, 117575, Singapore.
Sci Rep. 2015 Jun 1;5:10601. doi: 10.1038/srep10601.
Hierarchical heterostructures of beta-iron oxyhydroxide (β-FeOOH) nanostructures on electrospun TiO2 nanofibers were synthesized by a facile hydrothermal method. This synthesis method proves to be versatile to tailoring of β-FeOOH structural design that cuts across zero-dimensional particles (TF-P), one-dimensional needles (TF-N) to two-dimensional flakes (TF-F). In addition, synthesizing such oxyhyroxide nanostructures presents the advantage of exhibiting similar functional performances to its oxides counterpart however, without the need to undergo any annealing step which leads to undesirable structural collapse or sintering. The as-prepared hierarchical heterostructures possess high surface area for dye adsorptivity, efficient charge separation and visible photocatalytic activity. Also, for the first time, hydrogen gas sensing has been demonstrated on β-FeOOH nanostructures at room temperature. The reported hierarchical heterostructures of β-FeOOH on TiO2 nanofibers afford multiple functions of photocatalysis and sensing which are highly promising for environment monitoring and clean up applications.
通过一种简便的水热法合成了电纺TiO₂纳米纤维上的β-氢氧化铁(β-FeOOH)纳米结构的分级异质结构。这种合成方法被证明具有通用性,可用于β-FeOOH结构设计的定制,其结构涵盖了从零维颗粒(TF-P)、一维针状(TF-N)到二维薄片(TF-F)。此外,合成这种羟基氧化物纳米结构的优点是,它表现出与其氧化物对应物相似的功能性能,然而,无需进行任何导致不期望的结构坍塌或烧结的退火步骤。所制备的分级异质结构具有用于染料吸附的高表面积、有效的电荷分离和可见光催化活性。此外,首次在室温下证明了β-FeOOH纳米结构具有氢气传感性能。报道的TiO₂纳米纤维上β-FeOOH的分级异质结构具有光催化和传感的多种功能,这对于环境监测和清理应用非常有前景。