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Charge transfer complexes of fullerene[60] with porphyrins as molecular rectifiers. A theoretical study

机译:富勒烯[60]与卟啉作为分子整流剂的电荷转移络合物。理论研究

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Molecular diodes based on charge transfer complexes of fullerene[60] with different metalloporphyrins have been modeled. Their current-voltage characteristics and the rectification ratios (RR) were calculated using direct ab initio method at PBE/def2-SVP level of theory with D3 dispersion correction, for voltages ranging from -2 to +2V. The highest RR of 32.5 was determined for the complex of fullerene[60] with zinc tetraphenylporphyrin at 0.8V. Other molecular diodes possessed lower RR, however, all complexes showed RR higher than 1 at all bias voltages. The asymmetric evolutions and alignment of the molecular orbitals with the applied bias were found to be essential for generating the molecular diode rectification behavior. Metal nature of metalloporphyrins and the interaction porphyrin-electrode significantly affect RR of molecular diode. Large metal ions like Cd2+ and Ag2+ in metalloporphyrins disfavor rectification creating conducting channels in two directions, while smaller ions Zn2+ and Cu2+ favor rectification increasing the interaction between gold electrode and porphyrin macrocycle.
机译:基于富勒烯[60]与不同金属卟啉的电荷转移配合物的分子二极管已被建模。在-2至+ 2V的电压范围内,采用理论上PBE / def2-SVP和D3色散校正的直接从头计算方法,计算了它们的电流-电压特性和整流比(RR)。富勒烯[60]与四苯基卟啉锌在0.8V时的配合物的最高RR为32.5。其他分子二极管的RR较低,但是,所有配合物在所有偏置电压下的RR均高于1。发现分子轨道的不对称演化和对准以及所施加的偏压对于产生分子二极管整流行为至关重要。金属卟啉的金属性质和卟啉电极之间的相互作用显着影响分子二极管的反射率。金属卟啉中的Cd2 +和Ag2 +等大型金属离子不利于整流,从而在两个方向上形成导电通道,而较小的Zn2 +和Cu2 +离子则有利于整流,从而增加了金电极与卟啉大环之间的相互作用。

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