Affiliation:
1. Physikalisch‐Chemisches Institut Ruprecht‐Karls‐Universität Heidelberg 69120 Heidelberg Germany
2. Institute for Molecular Systems Engineering and Advanced Materials Ruprecht‐Karls‐Universität Heidelberg 69120 Heidelberg Germany
3. Interdisziplinäres Zentrum für Wissenschaftliches Rechnen Ruprecht‐Karls‐Universität Heidelberg 69120 Heidelberg Germany
4. Max‐Born‐Institut für Nichtlineare Optik und Kurzzeitspektroskopie 12489 Berlin Germany
Abstract
AbstractMolecular photoswitches are widely used in material sciences, physics, chemistry, and biology. As needs grow more complex, materials have to react more than one‐dimensionally. The use of multiple photoswitches at once opens manifold opportunities for further improved and more complicated systems. However, this requires independent addressability, i.e., orthogonality, and reversible processes. Herein, the first study on ultrafast excited state dynamics of two orthogonal photoswitches, a push‐pull azobenzene and a donor‐acceptor Stenhouse adduct is reported. In order to gain detailed insight in their interactions and mutual influences on their photoswitching behavior, they are addressed individually and simultaneously via transient absorption spectroscopy supported by quantum chemical calculations. They show reversible photoswitchability and in addition, can be used in 4D printing to provide easy access to a plethora of functional devices. Furthermore, environmental influences on the excited state dynamics are examined using different solvents and thin films. Both compounds photoisomerize independently when addressed individually or simultaneously and only little impacts on the excited state dynamics are found. Especially the vibrational relaxation is affected by different surroundings changing the energy dissipation while hardly affecting the electronic states involved. The orthogonal and simultaneous addressability is thereby crucial for their usage in 4D printed microactuators.
Funder
Deutsche Forschungsgemeinschaft
Subject
Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献