4.8 Article

Hydrophobic Effect as a Driving Force for Host-Guest Chemistry of a Multi-Receptor Keplerate-Type Capsule

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 137, Issue 17, Pages 5845-5851

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.5b01526

Keywords

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Funding

  1. CNRS (France)
  2. University of Versailles Saint Quentin (France)
  3. ICIQ Foundation
  4. Spanish Ministerio de Economia y Competitividad (MINECO) [CTQ2014-52824-R, SEV-2013-0319]
  5. AGAUR of Generalitat de Catalunya [2014-SGR-409]
  6. COST Action Polyoxometalate Chemistry for Molecular Nanoscience (PoChe-MoN) [CM1203]
  7. URV-ICIQ

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The effectiveness of the interactions between various alkylammonium cations and the well-defined spherical Keplerate-type {Mo-132} capsule has been tracked by H-1 DOSY NMR methodology, revealing a strong dependence on the self-diffusion coefficient of the cationic guests balanced between the solvated and the plugging situations. Analysis of the data is fully consistent with a two-site exchange regime involving the 20 independent {Mo9O9} receptors of the capsule. Furthermore, quantitative analysis allowed us to determine the stability constants associated with the plugging process of the pores. Surprisingly, the affinity of the capsule for a series of cationic guests increases continuously with its apolar character, as shown by the significant change of the stability constant from 370 to 6500 for NH4 and NEt4+, respectively. Such observations, supported by the thermodynamic parameters, evidence that the major factor dictating selectivity in the trapping process is the so-called hydrophobic effect. Computational studies, using molecular dynamics simulations, have been carried out in conjunction with the experiments. Analysis of the radial distribution functions g(r) reveals that NH4+ and NMe4+ ions behave differently in the vicinity of the capsule. The NH4+ ions do not exhibit well-defined distributions when in close vicinity. In contrast, the NMe4+ ions displayed sharp distributions related to different scenarios, such as firmly trapped or labile guest facing the {Mo9O9} pores. Together, these experimental and theoretical insights should aid in the exploitation of these giant polyoxometalates in solution for various applications.

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