We investigate how the electron-vibron coupling influences electron transport via an anisotropic magnetic molecule, such as a single-molecule magnet (SMM) Fe4, by using a model Hamiltonian with parameter values obtained from density-functional theory (DFT). The magnetic anisotropy parameters, vibrational energies, and electron-vibron coupling strengths of the Fe4 are computed using DFT. A giant spin model is applied to the Fe4 with only two charge states, specifically a neutral state with a total spin S=5 and a singly charged state with S=9/2, which is consistent with our DFT result and experiments on Fe4 single-molecule transistors. In sequential electron tunneling, we find that the magnetic anisotropy gives rise to new features in the con...
We investigate vibron-assisted electron transport in single-molecule transistors containing an indiv...
The electrical control and readout of molecular spin states are key for high-density storage. Expect...
By means of electronic transport, we study the transverse magnetic anisotropy of an individual Fe4 s...
We investigate how the electron-vibron coupling influences electron transport via an anisotropic mag...
Using first-principles methods, we study theoretically the properties of an individual {Fe-4} single...
We study single-electron transport in a three-ion molecule with strong uniaxial anisotropy and in th...
Here, methods of density functional theory (DFT) were employed to study the magnetic and transport p...
We study single-electron transport in a three-ion molecule with strong uniaxial anisotropy and in th...
We have measured quantum transport through an individual Fe4 single-molecule magnet embedded in a th...
By means of electronic transport, we study the transverse magnetic anisotropy of an individual Fe4 s...
We have measured quantum transport through an individual Fe4 single-molecule magnet embedded in a th...
Developing electronic components at the molecular scale is the ultimate goal in molecular electronic...
We have studied three-terminal electron transport through an individual single-molecule magnet Fe4. ...
We investigate vibron-assisted electron transport in single-molecule transistors containing an indiv...
We have studied three-terminal electron transport through an individual single-molecule magnet Fe4. ...
We investigate vibron-assisted electron transport in single-molecule transistors containing an indiv...
The electrical control and readout of molecular spin states are key for high-density storage. Expect...
By means of electronic transport, we study the transverse magnetic anisotropy of an individual Fe4 s...
We investigate how the electron-vibron coupling influences electron transport via an anisotropic mag...
Using first-principles methods, we study theoretically the properties of an individual {Fe-4} single...
We study single-electron transport in a three-ion molecule with strong uniaxial anisotropy and in th...
Here, methods of density functional theory (DFT) were employed to study the magnetic and transport p...
We study single-electron transport in a three-ion molecule with strong uniaxial anisotropy and in th...
We have measured quantum transport through an individual Fe4 single-molecule magnet embedded in a th...
By means of electronic transport, we study the transverse magnetic anisotropy of an individual Fe4 s...
We have measured quantum transport through an individual Fe4 single-molecule magnet embedded in a th...
Developing electronic components at the molecular scale is the ultimate goal in molecular electronic...
We have studied three-terminal electron transport through an individual single-molecule magnet Fe4. ...
We investigate vibron-assisted electron transport in single-molecule transistors containing an indiv...
We have studied three-terminal electron transport through an individual single-molecule magnet Fe4. ...
We investigate vibron-assisted electron transport in single-molecule transistors containing an indiv...
The electrical control and readout of molecular spin states are key for high-density storage. Expect...
By means of electronic transport, we study the transverse magnetic anisotropy of an individual Fe4 s...