BiFeO3纳米纤维静电纺丝参数与磁性能的相关性

Guilherme H. F. Melo, J. P. Santos, A. Gualdi, Chieh-Ming Tsai, W. Sigmund, R. E. Bretas
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引用次数: 6

摘要

摘要通过改变捕收剂的静电纺丝和热处理制备了不同形貌和尺寸的BiFeO3纳米纤维。通过热重分析(TGA)研究了纺丝态纳米纤维的热行为。通过透射和扫描电子显微镜(分别为TEM和SEM)检查纳米纤维的形态,同时通过能量色散x射线光谱法(EDS)和广角x射线衍射法(WAXD)分析化学成分和晶体结构。采用振动样品磁强计(VSM)对其磁性能进行了评价。获得了具有不同纳米纤维尺寸的不同类型的垫;当一些纳米纤维相互连接时,另一些则完全分离和排列。使用具有折叠的铝基板并在550℃退火后获得最薄的纳米纤维。在该温度下退火的所有样品都形成了纯BiFeO3,而在550和750℃下退火的样品形成了额外的Bi2Fe4O9相。未检测到铁杂质;所有纳米纤维的微晶尺寸在30和36nm之间。饱和磁化强度随着纳米纤维直径的减小和纳米纤维互连性的增加而增加。因此,这种铁磁性行为归因于BiFeO3(具有62nm周期)的螺旋自旋结构的抑制和互连纳米纤维的形态。
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Correlation between electrospinning parameters and magnetic properties of BiFeO3 nanofibers
Abstract BiFeO3 nanofibers of different morphologies and dimensions were produced by electrospinning varying the collector and thermal treatment. By thermogravimetric analyses (TGA) the thermal behavior of the as-spun nanofiberswas studied. The morphology of the nanofibers was examined by transmission and scanning electron microscopy (TEM and SEM, respectively) while the chemical composition and crystal structure were analyzed by energy dispersive x-ray spectrometry (EDS) and wide angle x-ray diffraction (WAXD). A vibrating sample magnetometer (VSM) was used to evaluate the magnetic properties. Different types of mats with different nanofibers´ dimensions were obtained; while some nanofibers were interconnected, otherswere completely separated and aligned. The thinnest nanofiberswere obtained using an aluminum substrate with folds and after annealing at 550∘C. All samples annealed at this temperature formed pure BiFeO3, while samples annealed at 550 and 750∘C formed an additional Bi2Fe4O9 phase. No iron impurities were detected; the crystallite size of all the nanofibers was between 30 and 36 nm. The saturation magnetization increased with the decrease of the nanofiber´s diameter and increase of nanofibers interconnectivity. Thus, this ferromagnetism behavior was attributed to the suppression of the spiral spin structure of BiFeO3 (which has a 62 nm period) and to the morphology of interconnected nanofibers.
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