Quantum Technology Centre, Physics Department, Lancaster University, Lancaster, LA1 4YB, UK.
Beilstein J Nanotechnol. 2015 Jun 26;6:1413-20. doi: 10.3762/bjnano.6.146. eCollection 2015.
We have studied the charge and thermal transport properties of a porphyrin-based single-molecule transistor with electro-burnt graphene electrodes (EBG) using the nonequilibrium Green's function method and density functional theory. The porphyrin-based molecule is bound to the EBG electrodes by planar aromatic anchor groups. Due to the efficient π-π overlap between the anchor groups and graphene and the location of frontier orbitals relative to the EBG Fermi energy, we predict HOMO-dominated transport. An on-off ratio as high as 150 is predicted for the device, which could be utilized with small gate voltages in the range of ±0.1 V. A positive thermopower of +280 μV/K is predicted for the device at the theoretical Fermi energy. The sign of the thermopower could be changed by tuning the Fermi energy. By gating the junction and changing the Fermi energy by +10 meV, this can be further enhanced to +475 μV/K. Although the electrodes and molecule are symmetric, the junction itself can be asymmetric due to different binding configurations at the electrodes. This can lead to rectification in the current-voltage characteristic of the junction.
我们使用非平衡格林函数方法和密度泛函理论研究了具有电烧蚀石墨烯电极(EBG)的卟啉基单分子晶体管的电荷和热输运性质。卟啉基分子通过平面芳香锚定基团与 EBG 电极结合。由于锚定基团与石墨烯之间的有效π-π重叠以及前沿轨道相对于 EBG 费米能量的位置,我们预测 HOMO 主导输运。该器件的导通-关断比高达 150,可在 ±0.1 V 的小栅极电压范围内使用。在理论费米能级下,该器件预测的热功率为+280 μV/K。通过调节费米能量,热功率的符号可以改变。通过对结进行门控并将费米能量改变+10 meV,可以进一步增强到+475 μV/K。尽管电极和分子是对称的,但由于电极上的不同结合构型,结本身可能是不对称的。这可能导致结的电流-电压特性出现整流。