Perrier Aurélie, Maurel François, Aubard Jean
Université Paris Diderot-Paris 7, ITODYS, UMR CNRS 7086, 1 Rue Guy de la Brosse, 75005 Paris, France.
J Phys Chem A. 2007 Oct 4;111(39):9688-98. doi: 10.1021/jp073436a. Epub 2007 Sep 7.
In the course of developing electronic devices on a molecular scale, dithienylethenes photochromic molecules constitute promising candidates for optoelectronic applications such as memories and switches. There is thus a great interest to understand and control the switching behavior of photochromic compounds deposited on metallic surfaces or nanoparticles. Within the framework of the density functional theory, we studied the effect of small gold clusters (Au3 and Au9) on the electronic structure and absorption spectrum of a model dithienylethene molecule. The molecular orbital interactions between the photochromic molecule and the gold cluster made it possible to rationalize some experimental findings (Dulic, D.; van der Molen, S. J.; Kudernac, T.; Jonkman, H. T.; de Jong, J. J. D.; Bowden, T. N.; van Esch, J.; Feringa, B. L.; van Wees, B. J. Phys. Rev. Lett. 2003, 91, 207402). For the closed-ring isomer, grafting a photochromic molecule on a small gold cluster does not change the characteristics of the electronic transition involved in the ring-opening reaction. On the opposite, the absorption spectrum of the photochromic open-ring isomer is strongly modified by the inclusion of the metallic cluster. In agreement with experimental results, our study thus showed that the cycloreversion reaction which involves the closed-ring isomer should be still possible, whereas the ring-closure reaction which involves the open-ring isomer should be inhibited. Connecting a dithienylethene molecule to a small gold cluster hence provides a qualitative comprehension of the photochromic activities of dithienylethenes connected to a gold surface.
在开发分子尺度的电子器件过程中,二噻吩乙烯类光致变色分子是诸如存储器和开关等光电子应用的有前景的候选材料。因此,人们对理解和控制沉积在金属表面或纳米颗粒上的光致变色化合物的开关行为非常感兴趣。在密度泛函理论的框架内,我们研究了小金簇(Au3和Au9)对模型二噻吩乙烯分子的电子结构和吸收光谱的影响。光致变色分子与金簇之间的分子轨道相互作用使得我们能够合理解释一些实验结果(杜利奇,D.;范德莫伦,S. J.;库德纳克,T.;琼克曼,H. T.;德容,J. J. D.;鲍登,T. N.;范埃施,J.;费林加,B. L.;范韦斯,B. J.《物理评论快报》2003年,91卷,207402)。对于闭环异构体,将光致变色分子接枝到小金簇上不会改变开环反应中涉及的电子跃迁特性。相反,光致变色开环异构体的吸收光谱会因包含金属簇而受到强烈影响。与实验结果一致,我们的研究表明,涉及闭环异构体的环化逆转反应应该仍然可行,而涉及开环异构体的闭环反应应该受到抑制。因此,将二噻吩乙烯分子连接到小金簇上可以定性地理解连接到金表面的二噻吩乙烯的光致变色活性。