Control of single-molecule junction conductance of porphyrins via a transition-metal center

Liu Z.-F.; Wei S.; Yoon H.; Adak O.; Ponce I.; Jiang Y.; Jang W.-D.; Campos L.M.; Venkataraman L.; Neaton J.B.

Abstract

Using scanning tunneling microscope break-junction experiments and a new first-principles approach to conductance calculations, we report and explain low-bias charge transport behavior of four types of metal-porphyrin-gold molecular junctions. A nonequilibrium Green's function approach based on self-energy corrected density functional theory and optimally tuned range-separated hybrid functionals is developed and used to understand experimental trends quantitatively. Importantly, due to the localized d states of the porphyrin molecules, hybrid functionals are essential for explaining measurements; standard semilocal functionals yield qualitatively incorrect results. Comparing directly with experiments, we show that the conductance can change by nearly a factor of 2 when different metal cations are used, counter to trends expected from gas-phase ionization energies which are relatively unchanged with the metal center. Our work explains the sensitivity of the porphyrin conductance with the metal center via a detailed and quantitative portrait of the interface electronic structure and provides a new framework for understanding transport quantitatively in complex junctions involving molecules with localized d states of relevance to light harvesting and energy conversion.

Más información

Título según SCOPUS: Control of single-molecule junction conductance of porphyrins via a transition-metal center
Título de la Revista: NANO LETTERS
Volumen: 14
Número: 9
Editorial: AMER CHEMICAL SOC
Fecha de publicación: 2014
Página de inicio: 5365
Página final: 5370
Idioma: English
DOI:

10.1021/nl5025062

Notas: SCOPUS