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Anisotropy induced Kondo splitting in a mechanically stretched molecular junction: A first-principles based study

  • Xiaoli Wang
  • , Dong Hou
  • , Xiao Zheng
  • , Yijing Yan

Research output: Contribution to journalJournal Articlepeer-review

Abstract

The magnetic anisotropy and Kondo phenomena in a mechanically stretched magnetic molecular junction are investigated by combining the density functional theory (DFT) and hierarchical equations of motion (HEOM) approach. The system is comprised of a magnetic complex Co(tpy-SH)2 sandwiched between adjacent gold electrodes, which is mechanically stretched in experiments done by Parks et al. [Science 328, 1370 (2010)]. The electronic structure and mechanical property of the stretched system are investigated via the DFT calculations. The HEOM approach is then employed to characterize the Kondo resonance features, based on the Anderson impurity model parameterized from the DFT results. It is confirmed that the ground state prefers the S = 1 local spin state. The structural properties, the magnetic anisotropy, and corresponding Kondo peak splitting in the axial stretching process are systematically evaluated. The results reveal that the strong electron correlations and the local magnetic properties of the molecule magnet are very sensitive to structural distortion. This work demonstrates that the combined DFT+HEOM approach could be useful in understanding and designing mechanically controlled molecular junctions.

Original languageEnglish
Article number034101
JournalThe Journal of Chemical Physics
Volume144
Issue number3
DOIs
Publication statusPublished - 21 Jan 2016

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© 2016 AIP Publishing LLC.

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