Physikalisches Institut Westfälische Wilhelms-Universität Münster, Willhelm-Klemm-Strasse 10, 48149 Münster, Germany.
Phys Chem Chem Phys. 2021 Mar 4;23(8):4728-4735. doi: 10.1039/d0cp06263d.
Photo-responsive molecular motors incorporated in soft porous materials enable the amplification of the motion of individual motor units by employing their collective and cooperative behavior. Metal-organic frameworks (MOFs) provide in this regard, due to their structural diversity and modular assembly, a unique matrix to construct well-defined and systematically tunable molecular environments for the embedding of molecular motors. However, despite advances in the development of such photo-responsive functional materials, a thorough understanding of the governing interactions at the atomic scale has been missing so far, limiting the possibility of predicting and fully exploring the potential of these assembled machineries. Here, we present a conformational study to unravel the collective structural behavior and elucidate the impact of motor-motor interactions on the local and global properties of the scaffold. In particular, our work highlights the impact of full conversion of the embedded molecular motors on the overall network topology of the MotorMOF and thus acts as a benchmark for future studies to further explore the correlation of responsive building units with the resulting functionality of these hierarchical systems.
将光响应分子马达结合到软质多孔材料中,可以利用它们的集体和协作行为来放大单个马达单元的运动。金属-有机骨架(MOFs)由于其结构多样性和模块化组装,为构建用于嵌入分子马达的明确和系统可调分子环境提供了独特的基质。然而,尽管在开发这种光响应功能材料方面取得了进展,但迄今为止,人们对原子尺度上的控制相互作用仍缺乏透彻的了解,这限制了对这些组装机构的潜力进行预测和充分探索的可能性。在这里,我们进行了构象研究,以揭示集体结构行为,并阐明马达-马达相互作用对支架局部和整体性质的影响。具体来说,我们的工作强调了嵌入的分子马达完全转化对 MotorMOF 整体网络拓扑结构的影响,因此可作为未来研究的基准,以进一步探索响应性构建单元与这些分层系统的功能之间的相关性。