Negative Differential Conductance in Polyporphyrin Oligomers with Nonlinear Backbones.

We study negative differential conductance (NDC) effects in polyporphyrin oligomers with nonlinear backbones. Using a low-temperature scanning tunneling microscope, we selectively controlled the charge transport path in single oligomer wires. We observed robust NDC when charge passed through a T-sha...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 140; no. 2; pp. 570 - 574
Autores principales: Kuang, Guowen, Yan, Linghao, Lin, Nian, Chen, Shi Zhang, Chen, Ke Qiu, Shang, Xuesong, Liu, Pei Nian
Formato: Artículo
Publicado: American Chemical Society 1/17/2018
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:We study negative differential conductance (NDC) effects in polyporphyrin oligomers with nonlinear backbones. Using a low-temperature scanning tunneling microscope, we selectively controlled the charge transport path in single oligomer wires. We observed robust NDC when charge passed through a T-shape junction, bistable NDC when charge passed through a 90° kink and no NDC when charge passed through a 120° kink. Aided by density functional theory with nonequilibrium Green's functions simulations, we attributed this backbone-dependent NDC to bias-modulated hybridization of the electrode states with the resonant transport molecular orbital. We argue this mechanism is generic in molecular systems, which opens a new route of designing molecular NDC devices.