Dithienylethene-Based Single Molecular Photothermal Linear Actuator

Angew Chem Int Ed Engl. 2023 Apr 11;62(16):e202218767. doi: 10.1002/anie.202218767. Epub 2023 Mar 6.

Abstract

By employing a mechanically controllable break junction technique, we have realized an ideal single molecular linear actuator based on dithienylethene (DTE) based molecular architecture, which undergoes reversible photothermal isomerization when subjected to UV irradiation under ambient conditions. As a result, open form (compressed, UV OFF) and closed form (elongated, UV ON) of dithienylethene-based molecular junctions are achieved. Interestingly, the mechanical actuation is achieved without changing the conductance of the molecular junction around the Fermi level over several cycles, which is an essential property required for an ideal single molecular actuator. Our study demonstrates a unique example of achieving a perfect balance between tunneling width and barrier height change upon photothermal isomerization, resulting in no change in conductance but a change in the molecular length, which results in mechanical actuation at the single molecular level.

Keywords: Break Junction; Molecular Machine; Molecular Switch; Photothermal Switching; Single Molecular Actuator.