4.8 Article

Giant Magnetoresistance in Carbon Nanotubes with Single-Molecule Magnets TbPc2

期刊

ACS NANO
卷 11, 期 7, 页码 6868-6880

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.7b02014

关键词

carbon nanotubes; TbPc2 magnetic molecules; supramolecular spin-valve effect; giant magnetoresistance; Coulomb blockade

资金

  1. Russian Science Foundation [17-12-01182]
  2. Carl-Zeiss-Stiftung
  3. DFG [TR 88]
  4. ANR
  5. Alexander von Humboldt foundation
  6. Russian Science Foundation [17-12-01182] Funding Source: Russian Science Foundation

向作者/读者索取更多资源

We present experimental results and a theoretical model for the gate-controlled spin-valve effect in carbon nanotubes with side-attached single-molecule magnets TbPc2, (Terbium(111) bis-phthalocyanine). These structures show a giant magnetoresistance up to 1000% in experiments on single wall nanotubes that are tunnel-coupled to the leads. The proposed theoretical model combines the spin-dependent Fano effect with Coulomb blockade and predicts a spin-spin interaction between the TbPc2 molecules, mediated by conducting electrons via the charging effect. This gate-tuned interaction is responsible for the stable magnetic ordering of the inner spins of the molecules in the absence of magnetic field. In the case of antiferromagnetic arrangement, electrons with either spin experience the scattering by the molecules, which results in blocking the linear transport. In strong magnetic fields, the Zeeman energy exceeds the effective antiferromagnetic coupling and one species of electrons is not scattered by molecules, which leads to a much lower total resistance at the resonant values of gate voltage, and hence to a supramolecular spin-valve effect.

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