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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Versatility of electrospinning in the fabrication of fibrous mat and mesh nanostructures of bismuth ferrite (BiFeO3) and their magnetic and photocatalytic activities
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Versatility of electrospinning in the fabrication of fibrous mat and mesh nanostructures of bismuth ferrite (BiFeO3) and their magnetic and photocatalytic activities

机译:电纺丝在铋铁氧体(BiFeO3)的纤维毡和网状纳米结构中的通用性及其磁和光催化活性

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This study demonstrates the fabrication of electrospun bismuth ferrite (BiFeO3/BFO) fiber mat and fibrous mesh nanostructures consisting of aligned and random fibers respectively. The formation of these one dimensional (1D) nanostructures was mediated by the drum and plate collectors in the electrospinning process that yielded aligned and random nanofibers of BFO respectively. The single phase and rhombohedral crystal structure of the fabricated 1D BFO nanostructures are confirmed through X-ray diffraction (XRD) studies. X-ray photoelectron spectroscopy (XPS) studies indicated that the fabricated fibers are stoichiometric BFO with native oxidation states +3. The surface texture and morphology are analyzed using the field emission scanning electron microscopy (FESEM) and high resolution transmission electron microscopy (HRTEM) techniques. The average size of fibers in mat and mesh nanostructures is found to be 200 nm and 150 nm respectively. The band gap energy of BFO mat and mesh deduced from their UV diffuse reflectance spectra (UV-DRS) was found to be 2.44 eV and 2.39 eV, respectively, which evidenced the improved visible light receptivity of BFO mesh compared to that of the mat. Magnetization studies using a super conducting quantum interference device (SQUID) magnetometer revealed the weak ferromagnetic properties of BFO mesh and mat nanostructures that could emerge due to the dimension induced suppression of cycloidal spin structures. The photocatalytic degradation properties of the fibrous mesh are found to be enhanced compared to that of the mat. This could be attributed to the reduced band gap energy and an improved semiconductor band-bending phenomenon in the mesh that favoured the transportation of excited charge carriers to the photocatalyst-dye interfaces and the production of more number of reactive species that lead to the effective degradation of the dye molecules.
机译:这项研究证明了电纺铋铁氧体(BiFeO3 / BFO)纤维毡和分别由排列的和无规的纤维组成的纤维网纳米结构的制造。这些一维(1D)纳米结构的形成是由静电纺丝过程中的鼓和板收集器介导的,分别产生BFO的排列纳米纤维和无规纳米纤维。通过X射线衍射(XRD)研究证实了所制造的1D BFO纳米结构的单相和菱面体晶体结构。 X射线光电子能谱(XPS)研究表明,制成的纤维是化学计量BFO,其天然氧化态为+3。使用场发射扫描电子显微镜(FESEM)和高分辨率透射电子显微镜(HRTEM)技术分析表面纹理和形态。发现垫和网状纳米结构中纤维的平均尺寸分​​别为200 nm和150 nm。由BFO垫和网片从其UV漫反射光谱(UV-DRS)推导得到的带隙能量分别为2.44 eV和2.39 eV,这证明了BFO垫网的可见光吸收率比垫子高。使用超导量子干涉仪(SQUID)磁力计进行的磁化研究表明,由于尺寸诱导的对摆线自旋结构的抑制,BFO网格和垫纳米结构的铁磁性能很弱。与毡相比,发现纤维网的光催化降解性能得到增强。这可能归因于带隙能量的减少和网格中半导体带弯曲现象的改善,这有利于将激发的电荷载流子传输到光催化剂-染料界面,并产生更多数量的反应物,从而导致有效降解染料分子。

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