Centro Atómico Bariloche and Instituto Balseiro, Comisión Nacional de Energía Atómica and CONICET, 8400 Bariloche, Argentina.
Phys Rev Lett. 2009 Dec 31;103(26):266807. doi: 10.1103/PhysRevLett.103.266807. Epub 2009 Dec 30.
Coherent electronic transport through individual molecules is crucially sensitive to quantum interference. We investigate the zero-bias and zero-temperature conductance through pi-conjugated annulene molecules weakly coupled to two leads for different source-drain configurations, finding an important reduction for certain transmission channels and for particular geometries as a consequence of destructive quantum interference between states with definite momenta. When translational symmetry is broken by an external perturbation we find an abrupt increase of the conductance through those channels. Previous studies concentrated on the effect at the Fermi energy, where this effect is very small. By analyzing the effect of symmetry breaking on the main transmission channels we find a much larger response thus leading to the possibility of a larger switching of the conductance through single molecules.
通过单个分子的相干电子输运对量子干涉极为敏感。我们研究了不同源漏配置下弱耦合到两个引线的π共轭轮烯分子的零偏压和零温度电导,发现由于具有确定动量的状态之间的破坏性量子干涉,某些传输通道和特定几何形状的电导会重要降低。当外部微扰破坏平移对称性时,我们发现这些通道的电导会突然增加。先前的研究集中在费米能处的效应,而在费米能处这种效应非常小。通过分析对称破缺对主要传输通道的影响,我们发现了更大的响应,从而有可能通过单个分子更大地切换电导。