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Controlling the preferential motion of chiral molecular walkers on a surface.
Abbasi-Pérez, David; Sang, Hongqian; Pérez-García, Lluïsa; Floris, Andrea; Amabilino, David B; Raval, Rasmita; Recio, J Manuel; Kantorovich, Lev.
Afiliación
  • Abbasi-Pérez D; Department of Physics , King's College London , London , WC2R 2LS , UK . Email: stqa8038@kcl.ac.uk ; Email: david.abbasi_perez@kcl.ac.uk.
  • Sang H; Department of Physics , King's College London , London , WC2R 2LS , UK . Email: stqa8038@kcl.ac.uk ; Email: david.abbasi_perez@kcl.ac.uk.
  • Pérez-García L; Institute for Interdisciplinary Research , Jianghan University , Wuhan 430056 , China.
  • Floris A; School of Pharmacy , University of Nottingham , University Park , Nottingham , NG7 2RD , UK.
  • Amabilino DB; School of Chemistry , University of Lincoln , Brayford Pool , Lincoln LN6 7TS , UK.
  • Raval R; School of Chemistry , GSK Carbon Neutral Lab. for Sustainable Chemistry , University of Nottingham , Triumph Road , NG7 2TU , UK.
  • Recio JM; Surface Science Research Centre , Department of Chemistry , University of Liverpool , Liverpool L69 3BX , UK.
  • Kantorovich L; MALTA-Consolider Team and Department of Analytical and Physical Chemistry , Universidad de Oviedo , Oviedo , 33006 , Spain.
Chem Sci ; 10(23): 5864-5874, 2019 Jun 21.
Article en En | MEDLINE | ID: mdl-31360390
ABSTRACT
Molecular walkers standing on two or more "feet" on an anisotropic periodic potential of a crystal surface may perform a one-dimensional Brownian motion at the surface-vacuum interface along a particular direction in which their mobility is the largest. In thermal equilibrium the molecules move with equal probabilities both ways along this direction, as expected from the detailed balance principle, well-known in chemical reactivity and in the theory of molecular motors. For molecules that possess an asymmetric potential energy surface (PES), we propose a generic method based on the application of a time-periodic external stimulus that would enable the molecules to move preferentially in a single direction thereby acting as Brownian ratchets. To illustrate this method, we consider a prototypical synthetic chiral molecular walker, 1,3-bis(imidazol-1-ylmethyl)-5(1-phenylethyl)benzene, diffusing on the anisotropic Cu(110) surface along the Cu rows. As unveiled by our kinetic Monte Carlo simulations based on the rates calculated using ab initio density functional theory, this molecule moves to the nearest equivalent lattice site via the so-called inchworm mechanism in which it steps first with the rear foot and then with the front foot. As a result, the molecule diffuses via a two-step mechanism, and due to its inherent asymmetry, the corresponding PES is also spatially asymmetric. Taking advantage of this fact, we show how the external stimulus can be tuned to separate molecules of different chirality, orientation and conformation. The consequences of these findings for molecular machines and the separation of enantiomers are also discussed.

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Chem Sci Año: 2019 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Chem Sci Año: 2019 Tipo del documento: Article
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