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Conformation controllable inelastic charge transport and shot noise behavior in metal-string single molecular devices

机译:金属串单分子器件中的构象可控非弹性电荷输送和射击噪声行为

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It is often intriguing experimentally to take stock of how conformational changes in the device configuration may impact the overall charge transport behavior of single-molecule junctions. Based on the allied approach of density functional theory and non-equilibrium Green's function formalism, we explore here the effect of junction heterogeneity on inelastic charge transport in various metal-string based single-molecule devices. The constituent active elements being sensitive to the resonant levels, transition metal centers are found to influence stretching, bending, and torsional excitation modes, while rocking and scissoring modes are controlled largely by the axial ligands. For certain molecular conformations and electrode orientations, phonon-assisted quantum interference effect may crop up, leading to the suppression of higher wavenumber vibrational modes. The resulting inelastic spectra are likely to take the shape of dominant Fano resonance or anti-resonance, depending on whether phonons are emitted or absorbed. Such nanoscale quantum interference effect is manifested especially in those metal-string molecular junctions for which the energy gap (between localized and delocalized virtual states) lies well within the optical phonon energies (Delta E vertical bar HOMO-LUMO vertical bar 40 meV). It also turns out that single molecular shot noise can exhibit nearly Poissonian behavior if the inter-channel tunneling through frontier orbitals is accompanied by phonon absorption or emission following a slow relaxation process. Charge transport properties across metal-string complexes can thus potentially be tuned by selective architecture of the metal centers and also, by preferred orientation of nanoscale electrodes in a bid to build up molecular devices with desirable controllability.
机译:实验似乎有兴趣,以吸取装置配置的构象变化可能影响单分子连接的总电荷传输行为。基于密度函数理论和非平衡绿色功能形式主义的盟友方法,我们探讨了结法异质性对各种金属串的单分子器件中的非弹性电荷输送的影响。对谐振水平敏感的组成活性元件被发现过渡金属中心影响拉伸,弯曲和扭转激励模式,而摇摆和剪切模式在很大程度上被轴向配体控制。对于某些分子构象和电极取向,可以裁剪辅助量子干扰效果,导致抑制更高的波数振动模式。由此产生的非弹性光谱可能采用主导的Fano共振或防振的形状,这取决于声子是否被发出或吸收。这种纳米级量子干扰效果表明,特别是在那些金属串的分子结中,其中能量间隙(局部和分层虚拟态之间)在光学校验能量内井井头(Delta E垂直条Homo-Lumo垂直条<40meV)。事实证明,如果通过前沿轨道间的通道间隧道伴随着慢松弛过程后的声位吸收或排放,则单个分子射击噪声可以表现出几乎泊松行为。因此,可以通过金属中心的选择性架构来调谐金属串复合物的电荷传输性能,以及通过BID中的纳米级电极的优选取向来调节以构建具有所需可控性的分子装置。

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