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Thermionic emission and tunneling at carbon nanotube-organic semiconductor interface

机译:碳纳米管-有机半导体界面的热电子发射和隧穿

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Figure Persented: We study the charge carrier injection mechanism across the carbon nanotube (CNT)-organic semiconductor interface using a densely aligned carbon nanotube array as electrode and pentacene as organic semiconductor. The current density-voltage (J-V) characteristics measured at different temperatures show a transition from a thermal emission mechanism at high temperature (above 200 K) to a tunneling mechanism at low temperature (below 200 K). A barrier height of ~0.16 eV is calculated from the thermal emission regime, which is much lower compared to the metal/pentacene devices. At low temperatures, the J-V curves exhibit a direct tunneling mechanism at low bias, corresponding to a trapezoidal barrier, while at high bias the mechanism is well described by Fowler-Nordheim tunneling, which corresponds to a triangular barrier. A transition from direct tunneling to Fowler-Nordheim tunneling further signifies a small injection barrier at the CNT/pentacene interface. Our results presented here are the first direct experimental evidence of low charge carrier injection barrier between CNT electrodes and an organic semiconductor and are a significant step forward in realizing the overall goal of using CNT electrodes in organic electronics.
机译:观点示意图:我们研究了使用密集排列的碳纳米管阵列作为电极,并五苯作为有机半导体跨碳纳米管(CNT)-有机半导体界面的电荷载流子注入机理。在不同温度下测得的电流密度-电压(J-V)特性显示出从高温(高于200 K)的热发射机理到低温(低于200 K)的隧穿机理的转变。根据热辐射计算得出的势垒高度约为0.16 eV,与金属/并五苯装置相比要低得多。在低温下,J-V曲线在低偏置下表现出直接隧穿机制,对应于梯形势垒,而在高偏置下,该机理由Fowler-Nordheim隧穿很好地描述,其对应于三角形势垒。从直接隧穿到Fowler-Nordheim隧穿的过渡进一步表明,CNT /并五苯界面处的注入势垒较小。我们在这里提出的结果是CNT电极与有机半导体之间低电荷载流子注入势垒的第一个直接实验证据,并且是朝着实现在有机电子产品中使用CNT电极的总体目标迈出的重要一步。

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