State Key Laboratory of Electroanalytical Chemistry, CAS Center for Excellence in Nanoscience, c/o Engineering Laboratory for Modern Analytical Techniques, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences , Changchun 130022, China.
University of Chinese Academy of Sciences , Beijing 100049, China.
ACS Nano. 2016 May 24;10(5):5212-20. doi: 10.1021/acsnano.6b00786. Epub 2016 Apr 19.
The local molecular environment is a critical factor which should be taken into account when measuring single-molecule electrical properties in condensed media or in the design of future molecular electronic or single molecule sensing devices. Supramolecular interactions can be used to control the local environment in molecular assemblies and have been used to create microenvironments, for instance, for chemical reactions. Here, we use supramolecular interactions to create microenvironments which influence the electrical conductance of single molecule wires. Cucurbit[8]uril (CB[8]) with a large hydrophobic cavity was used to host the viologen (bipyridinium) molecular wires forming a 1:1 supramolecular complex. Significant increases in the viologen wire single molecule conductances are observed when it is threaded into CB[8] due to large changes of the molecular microenvironment. The results were interpreted within the framework of a Marcus-type model for electron transfer as arising from a reduction in outer-sphere reorganization energy when the viologen is confined within the hydrophobic CB[8] cavity.
当在凝聚态介质中测量单分子电导率或在设计未来的分子电子或单分子传感设备时,局部分子环境是一个需要考虑的关键因素。超分子相互作用可用于控制分子组装体中的局部环境,并已用于创建微环境,例如用于化学反应。在这里,我们使用超分子相互作用来创建影响单分子线电导率的微环境。具有大疏水性空腔的葫芦脲 [8](CB[8])被用来容纳形成 1:1 超分子配合物的紫罗碱(联吡啶)分子线。由于分子微环境的巨大变化,当紫罗碱分子线被穿入 CB[8]时,其单分子电导率显著增加。结果根据电子转移的马库斯(Marcus)型模型进行解释,这是由于当紫罗碱被限制在疏水 CB[8]空腔内时,外层重组能的降低所致。