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Heterospin biradicals provide insight into molecular conductance and rectification

机译:杂多旋双自由基可深入了解分子电导和整流

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摘要

The correlation of electron transfer with molecular conductance (g: electron transport through single molecules) by Nitzan and others has contributed to a fundamental understanding of single-molecule electronic materials. When an unsymmetric, dipolar molecule spans two electrodes, the possibility exists for different conductance values at equal, but opposite electrode biases. In the device configuration, these molecules serve as rectifiers of the current and the efficiency of the device is given by the rectification ratio (RR = gforward/greverse). Experimental determination of the RR is challenging since the orientation of the rectifying molecule with respect to the electrodes and with respect to the electrode bias direction is difficult to establish. Thus, while two different values of g can be measured and a RR calculated, one cannot easily assign each conductance value as being aligned with or opposed to the molecular dipole, and calculations are often required to resolve the uncertainty. Herein, we describe the properties of two isomeric, triplet ground state biradical molecules that serve as constant-bias analogs of single-molecule electronic devices. Through established theoretical relationships between g and electronic coupling, H2, and between H2 and magnetic exchange coupling, J (g ∝ H2 ∝ J), we use the ratio of experimental J-values for our two isomers to calculate a RR for an unsymmetric bridge molecule with known geometry relative to the two radical fragments of the molecule and at a spectroscopically-defined potential bias. Our experimental results are compared with device transport calculations.
机译:Nitzan等人将电子转移与分子电导(例如,通过单个分子的电子转移)的相关性有助于对单分子电子材料的基本了解。当不对称的偶极分子跨过两个电极时,存在相同电势值但相反的电极偏置的不同电导值的可能性。在器件配置中,这些分子用作电流的整流器,并且器件的效率由整流比(RR = gforward / greverse)给出。由于难以建立整流分子相对于电极和相对于电极偏置方向的取向,因此RR的实验确定具有挑战性。因此,尽管可以测量g的两个不同值并计算出RR,但不能轻易地将每个电导值指定为与分子偶极对齐或相对,并且经常需要进行计算以解决不确定性。在这里,我们描述了两个异构的三重态基态双自由基分子的性质,该分子充当单分子电子设备的恒定偏置类似物。通过建立的g与电子耦合H 2 之间以及H 2 与磁交换耦合J之间的理论关系J(g ∝ H 2 ∝ J),我们使用两种异构体的实验J值之比来计算具有相对于分子的两个自由基片段的几何形状且处于光谱定义的电位偏差下的不对称桥分子的​​RR。我们的实验结果与设备传输计算进行了比较。

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