Weibel Nicolas, Grunder Sergio, Mayor Marcel
University of Basel, Department of Chemistry, St. Johanns-Ring 19, 4056 Basel, Switzerland.
Org Biomol Chem. 2007 Aug 7;5(15):2343-53. doi: 10.1039/b703287k. Epub 2007 Jun 5.
Molecular electronics is a fascinating field of research contributing to both fundamental science and future technological achievements. A promising starting point for molecular devices is to mimic existing electronic functions to investigate the potential of molecules to enrich and complement existing electronic strategies. Molecules designed and synthesized to be integrated into electronic circuits and to perform an electronic function are presented in this article. The focus is set in particular on rectification and switching based on molecular devices, since the control over these two parameters enables the assembly of memory units, likely the most interesting and economic application of molecular based electronics. Both historical and contemporary solutions to molecular rectification are discussed, although not exhaustively. Several examples of integrated molecular switches that respond to light are presented. Molecular switches responding to an electrochemical signal are also discussed. Finally, supramolecular and molecular systems with intuitive application potential as memory units due to their hysteretic switching are highlighted. Although a particularly attractive feature of molecular electronics is its close cooperation with neighbouring disciplines, this article is written from the point of view of a chemist. Although the focus here is largely on molecular considerations, innovative contributions from physics, electro engineering, nanotechnology and other scientific disciplines are equally important. However, the ability of the chemist to correlate function with structure, to design and to provide tailor-made functional molecules is central to molecular electronics.
分子电子学是一个迷人的研究领域,对基础科学和未来的技术成就都有贡献。分子器件一个有前景的出发点是模仿现有的电子功能,以研究分子丰富和补充现有电子策略的潜力。本文介绍了为集成到电子电路中并执行电子功能而设计和合成的分子。特别关注基于分子器件的整流和开关,因为对这两个参数的控制能够组装存储单元,这可能是基于分子的电子学最有趣且最具经济性的应用。本文讨论了分子整流的历史和当代解决方案,尽管并不详尽。还介绍了几个对光有响应的集成分子开关的例子。也讨论了对电化学信号有响应的分子开关。最后,强调了由于其滞后开关而具有直观应用潜力作为存储单元的超分子和分子系统。尽管分子电子学一个特别吸引人的特点是它与相邻学科的密切合作,但本文是从化学家的角度撰写的。尽管这里主要关注分子方面的考虑,但物理学、电气工程、纳米技术和其他科学学科的创新贡献同样重要。然而,化学家将功能与结构相关联、设计并提供量身定制的功能分子的能力是分子电子学的核心。