Let me introduce the question more detailly.
As figured out by our previous study (
https://aip.scitation.org/doi/10.1063/1.4820237), the molecular levels (specifically LUMO) move away from the Fermi energy as the two electrodes separated (molecule-electrode coupling decreases).
This phenomenon has also been observed by other researchers (
https://journals.aps.org/prb/pdf/10.1103/PhysRevB.68.115407 and
https://www.nature.com/articles/nnano.2011.212).
However, this energy shift of molecular level respected to the Fermi level is not thorough understood.
The possible reasons are:
1) Coupling strength between the molecule and electrodes, which is also used in the references to explain this phenomenon.
2) Charge transfer between the electrodes and molecule.
3) ... Some other reasons
But, there is no substantial evident to confirm which above or other reason is the underlying driving force for the molecule level shift.
Now, I want to give a clear answer by using ATK package.
But, I encountered difficulty.
1) How to quantitatively describe the coupling between molecule and electrodes in a single-molecule junction in ATK?
One possible way, using the Gamma function (obtained from the broaden of PDOS).
For this way, I have tried to get the Gamma function for each molecular orbitals with the interelectrode distance. The results show that Gamma does not necessarily have relationship with the energy level shift. To be more specific, for example there are three molecular orbitals (LUMO, LUMO+1, LUMO+2) rigidly move away from the Fermi energy when the electrode distance is stretched. Gamma for LUMO decreases with electrode distance, but Gamma for LUMO+1 increases with electrode distance. This suggests that Gamma is not a good quantity to describe the molecular level shift.
On the other hand, according to the Green's function formula, the molecule energy shift is directly come from the real part of the self-energy. So, is it possible that the real part of the self-energy matrix is closely related to the electrode distance? If so, what is the physics?
2) How to get the charge for the molecule in a molecular junction with different electrode distance? I find one can not used the "Bader Charge Analysis" tool in ATK 2015.1
....
So, what can I do further, any suggestions?
With best regards,
/Guang-Ping Zhang