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Electrical conduction mechanism of an individual polypyrrole nanowire at low temperatures

机译:单个聚吡咯纳米线在低温下的导电机理

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Conducting polypyrrole (PPY) nanowires doped with p-toluene sulfonamide (PTSA) were synthesized by a template-free self-assembly method. Electrical transport characteristics, i. e. current-voltage (I-V) behavior, of an individual PPY/PTSA nanowire have been explored in a wide temperature range from 300 down to 40 K. The fitting results of I-V curves indicated that the electrical conduction mechanism can be explained by the space-charge-limited current (SCLC) theory from 300 down to 100 K. In this temperature range, traps play an important role for this non-crystalline system. The corresponding trap energy and trap concentration have also been calculated based on the SCLC theory. Interestingly, there is no trap at 160 K, different from other temperatures. The obtained carrier mobility for the polymer nanowires is 0.964 cm(2) V-1 s(-1) on the basis of trap free SCLC theory. In the temperature range of 80-40 K, little current can flow through the nanowire especially at lower voltages, however, the current follows the equation I infinity (V/Vt-1). at higher bias, which could be attributed to Coulomb blockade effect. Additionally, the differential conductance dI/dV curves also show some clear Coulomb oscillations.
机译:采用无模板自组装法合成了对甲苯磺酰胺(PTSA)掺杂的导电聚吡咯(PPY)纳米线。电气传输特性e。在300至40 K的宽温度范围内,研究了单个PPY / PTSA纳米线的电流-电压(IV)行为。IV曲线的拟合结果表明,导电机理可以通过空间电荷来解释极限电流(SCLC)理论从300降低到100K。在此温度范围内,陷阱对该非晶系统起着重要作用。相应的阱能和阱浓度也已根据SCLC理论进行了计算。有趣的是,与其他温度不同,在160 K时没有陷阱。根据无陷阱SCLC理论,获得的聚合物纳米线的载流子迁移率为0.964 cm(2)V-1 s(-1)。在80-40 K的温度范围内,几乎没有电流可以流经纳米线,尤其是在较低电压下,但是,电流遵循方程式I infinity(V / Vt-1)。在较高的偏见,这可能是由于库仑封锁效应。此外,差分电导dI / dV曲线还显示出一些清晰的库仑振荡。

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