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Development and application of a 2-electron reduced density matrix approach to electron transport via molecular junctions

机译:通过分子交叉点对电子输送到电子传输的二氧化合密度矩阵方法的开发和应用

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Can an electronic device be constructed using only a single molecule? Since this question was first asked by Aviram and Ratner in the 1970s [Chem. Phys. Lett. 29, 277 (1974)], the field of molecular electronics has exploded with significant experimental advancements in the understanding of the charge transport properties of single molecule devices. Efforts to explain the results of these experiments and identify promising new candidate molecules for molecular devices have led to the development of numerous newtheoretical methods including the current standard theoretical approach for studying single molecule charge transport, i.e., the non-equilibrium Green's function formalism (NEGF). By pairing this formalism with density functional theory (DFT), a wide variety of transport problems in molecular junctions have been successfully treated. For some systems though, the conductance and current-voltage curves predicted by common DFT functionals can be several orders of magnitude above experimental results. In addition, since density functional theory relies on approximations to the exact exchange-correlation functional, the predicted transport properties can show significant variation depending on the functional chosen. As a first step to addressing this issue, the authors have replaced density functional theory in the NEGF formalism with a 2-electron reduced density matrix (2-RDM) method, creating a new approach known as the NEGF-RDM method. 2-RDM methods provide a more accurate description of electron correlation compared to density functional theory, and they have lower computational scaling compared to wavefunction based methods of similar accuracy. Additionally, 2-RDM methods are capable of capturing static electron correlation which is untreatable by existing NEGF-DFT methods. When studying dithiol alkane chains and dithiol benzene in model junctions, the authors found that the NEGF-RDM predicts conductances and currents that are 1-2 orders of magnitude below thos
机译:可以仅使用单个分子构建电子设备吗?自1970年代的Aviram和Ratner首次提出这个问题以来,从1970年代举办了[化学。物理。吧。 27,277(1974)],分子电子领域已经爆炸,在理解单分子器件的电荷传输性能方面具有显着的实验进展。努力解释这些实验的结果并确定有希望的分子装置的新候选分子导致了许多新理论方法的发展,包括研究单分子电荷运输的当前标准理论方法,即非平衡绿色的功能形式主义(Negf )。通过将这种形式主义与密度泛函理论(DFT)配对,已成功处理分子交叉点的各种运输问题。然而,对于一些系统,常见DFT功能预测的电导和电流曲线可以是高于实验结果的几个数量级。另外,由于密度函数理论依赖于对确切交换相关功能的近似,因此预测的传输特性可以根据所选择的功能而显着变化。作为解决此问题的第一步,作者在NegF形式主义中取代了密度泛函理论,具有2粒度的密度矩阵(2-RDM)方法,创建了一种称为NegF-RDM方法的新方法。与密度泛函理论相比,2 RDM方法提供了更准确的电子相关描述,与基于挥发性的类似精度的方法相比,它们具有较低的计算缩放。另外,2-RDM方法能够通过现有的NegF-DFT方法捕获静态电子相关性,该相关性是未可治区的。当研究模型结中的二硫醇烷烃链和二硫醇苯时,作者发现negf-rdm预测了The以下1-2级的导电和电流

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