Published October 20, 2008 | Version Supplemental Material
Journal Article Open

Experimentally-based recommendations of density functionals for predicting properties in mechanically interlocked molecules

  • 1. ROR icon University of California, Los Angeles
  • 2. ROR icon California Institute of Technology

Abstract

Mechanically interlocked molecules (rotaxanes and catenanes) have already revolutionized molecular electronics and have the promise of a similar impact in other areas of nanotechnology, ranging from nanoactuators to in vivo drug nanocarriers. However, it would be most useful to have quantitative criteria for predicting structures, binding, and excitation energies for use in designing molecules with mechanical bonds. We assess here the use of density functional theory (DFT) to a noncovalently bound complex and find that no density functional is fully satisfactory. However, we find that the new M06-suite of density functionals, which include attractive medium-range interactions, leads to dramatic improvements in the structures (error of 0.04 Å in the interplanar distances for M06-L compared to 0.42 Å for B3LYP) and excitation energies (within 0.08 eV for TD-M06-HF without empirical correction compared to 2.2 eV error for TD-B3LYP). However, M06 predicts the complex to be too strongly bound by 22.6 kcal mol−1 (B3LYP leads to too weak a bond by 29 kcal mol−1), while current empirical FF DREIDING is too weakly bound by only 15 kcal mol−1.

Additional Information

© 2008 American Chemical Society. Publication Date (Web): October 20, 2008. This research was partially supported by NSF-NIRT(CTS-0608889) and MARCO-FENA. Facilities were funded by grants from ARO-DURIP and ONR-DURIP. Supporting Information Available: Supplied are NMR spectra, thermodynamic properties, and XYZ coordinates. This material is available free of charge via the Internet at http://pubs.acs.org.

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Additional details

Identifiers

Eprint ID
13842
DOI
10.1021/ja805953u
Resolver ID
CaltechAUTHORS:BENjacs08

Related works

Describes
10.1021/ja805953u (DOI)

Funding

NSF
CTS-0608889
Microelectronics Advanced Research Corporation (MARCO)
Army Research Office (ARO)
Office of Naval Research (ONR)
Center on Functional Engineered NanoArchitectonics (FENA)

Dates

Created
2009-07-16
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Updated
2021-11-08
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