Molecular Orbital Rule for Quantum Interference in Weakly Coupled Dimers: Low-Energy Giant Conductivity Switching Induced by Orbital Level Crossing
D. Nozaki, A. Lücke, W.G. Schmidt, The Journal of Physical Chemistry Letters (2017) 727–732.
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Journal Article
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| English
Author
Nozaki, Daijiro;
Lücke, Andreas;
Schmidt, Wolf GeroLibreCat
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Journal Title
The Journal of Physical Chemistry Letters
Page
727-732
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Nozaki D, Lücke A, Schmidt WG. Molecular Orbital Rule for Quantum Interference in Weakly Coupled Dimers: Low-Energy Giant Conductivity Switching Induced by Orbital Level Crossing. The Journal of Physical Chemistry Letters. 2017:727-732. doi:10.1021/acs.jpclett.6b02989
Nozaki, D., Lücke, A., & Schmidt, W. G. (2017). Molecular Orbital Rule for Quantum Interference in Weakly Coupled Dimers: Low-Energy Giant Conductivity Switching Induced by Orbital Level Crossing. The Journal of Physical Chemistry Letters, 727–732. https://doi.org/10.1021/acs.jpclett.6b02989
@article{Nozaki_Lücke_Schmidt_2017, title={Molecular Orbital Rule for Quantum Interference in Weakly Coupled Dimers: Low-Energy Giant Conductivity Switching Induced by Orbital Level Crossing}, DOI={10.1021/acs.jpclett.6b02989}, journal={The Journal of Physical Chemistry Letters}, author={Nozaki, Daijiro and Lücke, Andreas and Schmidt, Wolf Gero}, year={2017}, pages={727–732} }
Nozaki, Daijiro, Andreas Lücke, and Wolf Gero Schmidt. “Molecular Orbital Rule for Quantum Interference in Weakly Coupled Dimers: Low-Energy Giant Conductivity Switching Induced by Orbital Level Crossing.” The Journal of Physical Chemistry Letters, 2017, 727–32. https://doi.org/10.1021/acs.jpclett.6b02989.
D. Nozaki, A. Lücke, and W. G. Schmidt, “Molecular Orbital Rule for Quantum Interference in Weakly Coupled Dimers: Low-Energy Giant Conductivity Switching Induced by Orbital Level Crossing,” The Journal of Physical Chemistry Letters, pp. 727–732, 2017.
Nozaki, Daijiro, et al. “Molecular Orbital Rule for Quantum Interference in Weakly Coupled Dimers: Low-Energy Giant Conductivity Switching Induced by Orbital Level Crossing.” The Journal of Physical Chemistry Letters, 2017, pp. 727–32, doi:10.1021/acs.jpclett.6b02989.