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Resistive memories based on Rose Bengal and related xanthene derivatives: insights from modeling charge transport properties

机译:基于玫瑰孟加拉和相关Xanthene衍生物的电阻回忆:建模充电运输性能的见解

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We present a computational study on the electrical bistability behavior of four xanthene derivatives based on sodium fluorescein. Intra-and intermolecular charge transfer parameters are computed and employed to rationalize the efficiencies experimentally determined for resistive memory devices based on these organic materials. Charge injection at the electrode/organic interface in the presence of pristine and reduced molecular species is estimated by comparing the electron affinities of xanthene derivatives with the work function of commonly employed electrodes, and bulk charge transport is modeled assuming a charge hopping regime. It is shown that the OFF state is injection limited and that the efficiency of the bistability phenomenon is governed by sizeable intramolecular reorganization energies associated with electron transfer. The computed results reveal that the combined role of electron attractor groups and conformational degrees of freedom contributes to a more favorable level alignment at the interface and to the desired increase of the intramolecular reorganization energies. These optimal conditions are fulfilled for Rose Bengal. It is expected that the interrelated role of molecular parameters, conformational degrees of freedom and electron attractor character of substituents disclosed by this study might be used to formulate general structure-property relationships for the design of new, more efficient restive memory devices based on molecular semiconductors.
机译:基于荧光素钠的四黄嘌呤衍生物的电抗体行为提供了一种计算研究。计算和分子间电荷转移参数进行计算,并用于将基于这些有机材料的电阻存储器件进行实验确定的效率合理化。通过将Xanthene衍生物与普通采用的电极的功函数进行比较,估计在原始和减少的分子物质存在下的电极/有机界面处的电荷注射估计。假设跳跃制度,模拟散装电荷传输。结果表明,关闭状态是注射限制的,并且双稳态现象的效率受与电子转移相关的大量分子内重组能量的控制。计算结果表明,电子吸引子组和构象自由度的组合作用有助于在界面处具有更有利的水平对准以及分子内重组能量的期望增加。对于玫瑰孟加拉,满足了这些最佳条件。预计本研究中公开的分子参数的相互关联的分子参数的作用,组合的自由度和电子吸引子特征可用于制定基于分子半导体的新的更高效的恢复存储器设备的一般结构性关系。 。

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    Politecnico di Milano Dipartimento di Chimica Materiali e Ing. Chimica "G. Natta" and INSTM UdR Milano p.za Leonardo da Vinci 32 20133 Milano Italy.;

    Politecnico di Milano Dipartimento di Chimica Materiali e Ing. Chimica "G. Natta" and INSTM UdR Milano p.za Leonardo da Vinci 32 20133 Milano Italy.;

    Universita degli Studi di Bologna Dipartimento di Chimica "G. Ciamician" and INSTM UdR Bologna via F. Selmi 2 40126 Bologna Italy.;

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  • 中图分类 物理学;
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