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Magnetoresistive phenomena in an Fe-filled carbon nanotube/elastomer composite

机译:填充铁的碳纳米管/弹性体复合材料中的磁阻现象

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DC magnetoresistive effects were observed in above-percolation-threshold loaded Fe-filled carbon nanotube/polyurethane-urea composite samples. A phenomenological model is derived from interpretation of resistance relaxation for a range of axial strains. The large instantaneous magnetoresistance of +90% observed at low axial strain was a result of conduction pathway breaking caused by preferential orientation of the conducting nanotubes perpendicular to the axial current flow: a result of the magnetic torque experienced by the ferromagnetic nanotube core. At large strain the observed large instantaneous change in resistance of -90% resulted from voltage-driven relaxation in the conducting nanotube network. At high axial strain the competition between voltage-driven relaxation and a magnetic torque gave rise to an oscillatory component of resistance relaxation.
机译:在高于渗流阈值的负载Fe填充的碳纳米管/聚氨酯-脲复合材料样品中观察到DC磁阻效应。现象学模型源自对一系列轴向应变的电阻松弛的解释。在低轴向应变下观察到的+ 90%的大瞬时磁阻是由于导电纳米管垂直于轴向电流流动的优先取向导致的传导路径中断的结果:铁磁纳米管核承受的磁转矩的结果。在大应变下,观察到的-90%的大瞬时电阻变化是由导电纳米管网络中的电压驱动松弛引起的。在高轴向应变下,电压驱动的弛豫和磁转矩之间的竞争导致电阻弛豫的振荡成分。

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