Department of Chemistry and Biochemistry, MSC 3C, New Mexico State University, Las Cruces, New Mexico 88003, USA.
J Chem Phys. 2011 Dec 28;135(24):244506. doi: 10.1063/1.3660206.
The multilayer multiconfiguration time-dependent Hartree (ML-MCTDH) theory within second quantization representation of the Fock space, a novel numerically exact methodology to treat many-body quantum dynamics for systems containing identical particles, is applied to study the effect of vibrational motion on electron transport in a generic model for single-molecule junctions. The results demonstrate the importance of electronic-vibrational coupling for the transport characteristics. For situations where the energy of the bridge state is located close to the Fermi energy, the simulations show the time-dependent formation of a polaron state that results in a pronounced suppression of the current corresponding to the phenomenon of phonon blockade. We show that this phenomenon cannot be explained solely by the polaron shift of the energy but requires methods that incorporate the dynamical effect of the vibrations on the transport. The accurate results obtained with the ML-MCTDH in this parameter regime are compared to results of nonequilibrium Green's function theory.
多层多组态含时哈特里(ML-MCTDH)理论在福克空间的二次量子化表示下,是一种处理含有相同粒子的多体量子动力学的新的数值精确方法,被应用于研究振动运动对单分子结中电子输运的影响。结果表明,电子-振动耦合对输运特性很重要。对于桥接态能量接近费米能的情况,模拟显示出极化子态的时变形成,导致电流的显著抑制,对应于声子阻塞现象。我们表明,这种现象不能仅仅通过极化子能量的移动来解释,而是需要包含振动对输运的动力学影响的方法。在这个参数范围内,ML-MCTDH 获得的精确结果与非平衡格林函数理论的结果进行了比较。