Defocused Imaging of UV-Driven Surface-Bound Molecular Motors.

Synthetic molecular motors continue to attract great interest due to their ability to transduce energy into nanomechanical motion, the potential to do work and drive systems out-of-equilibrium. Of particular interest are unidirectional rotary molecular motors driven by chemical fuel or light. Probin...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 139; no. 21; pp. 7156 - 7160
Autores principales: Krajnik, Bartosz, Chen, Jiawen, Watson, Matthew A., Cockroft, Scott L., Feringa, Ben L., Hofkens, Johan
Formato: Resumen
Publicado: American Chemical Society 5/31/2017
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:Synthetic molecular motors continue to attract great interest due to their ability to transduce energy into nanomechanical motion, the potential to do work and drive systems out-of-equilibrium. Of particular interest are unidirectional rotary molecular motors driven by chemical fuel or light. Probing the mechanistic details of their operation at the single-molecule level is hampered by the diffraction limit, which prevents the collection of dynamic positional information by traditional optical methods. Here, we use defocused wide-field imaging to examine the unidirectional rotation of individual molecular rotary motors on a quartz surface in unprecedented detail. The sequential occupation of nanomechanical states during the UV and heat-induced cycle of rotation are directly imaged in real-time. The approach will undoubtedly prove important in elucidating the mechanistic details and assessing the utility of novel synthetic molecular motors in the future.