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通过纳米石墨烯的矩形π-扩展实现光诱导能量转移的独特发生及其方向切换。

Exclusive occurrence of photoinduced energy transfer and switching of its direction by rectangular π-extension of nanographenes.

作者信息

Umeyama Tomokazu, Hanaoka Takuma, Yamada Hiroki, Namura Yuki, Mizuno Satoshi, Ohara Tomoya, Baek Jinseok, Park JaeHong, Takano Yuta, Stranius Kati, Tkachenko Nikolai V, Imahori Hiroshi

机构信息

Department of Molecular Engineering , Graduate School of Engineering , Kyoto University , Nishikyo-ku , Kyoto , 615-8510 , Japan . Email:

Institute for Integrated Cell-Material Sciences (WPI-iCeMS) , Kyoto University , Sakyo-ku , Kyoto 606-8501 , Japan.

出版信息

Chem Sci. 2019 Jun 5;10(27):6642-6650. doi: 10.1039/c9sc01538h. eCollection 2019 Jul 21.

Abstract

As structure defined cutouts of the graphene lattice, nanographene molecules have gained plenty of attention because of their high potential for versatile applications in organic electronics and energy conversion devices and as ideal model systems for the better understanding of intrinsic structure-property correlations of graphenes. In this study, well-defined nanographenes with sp carbon networks of different sizes, hexa--hexabenzocoronene (HBC) and its rectangularly π-extended version, a short graphene nanoribbon (GNR), have been covalently functionalized with photoactive porphyrin molecules. On the basis of their spectroscopic studies, the photodynamics of the porphyrin-linked nanographenes was found to be influenced substantially by the size of the nanographenes. Photoexcitation of the porphyrin-HBC linked system led to exclusive energy transfer (EnT) from the first singlet excited state (S) of the nanographene to the porphyrin, whereas opposite selective EnT occurred from the first and second singlet excited states (S and S) of the porphyrin to the nanographene in the porphyrin-GNR linked system. In particular, ultrafast efficient EnTs from both the S and S states of the porphyrin to GNR mimic the corresponding ultrafast EnTs from the S and S states of carotenoids to chlorophylls in light-harvesting systems of natural photosynthesis. Such unique photophysical properties will be useful for the rational design of carbon-based photofunctional nanomaterials for optoelectronics and solar energy conversion devices.

摘要

作为石墨烯晶格的结构定义切口,纳米石墨烯分子因其在有机电子学和能量转换器件中的广泛应用潜力以及作为更好理解石墨烯本征结构-性质相关性的理想模型系统而备受关注。在本研究中,具有不同尺寸sp碳网络的明确纳米石墨烯、六-六苯并蔻(HBC)及其矩形π扩展版本短石墨烯纳米带(GNR)已与光活性卟啉分子进行了共价功能化。基于光谱研究,发现卟啉连接的纳米石墨烯的光动力学受到纳米石墨烯尺寸的显著影响。卟啉-HBC连接系统的光激发导致能量从纳米石墨烯的第一单线态激发态(S)专一性地转移(EnT)到卟啉,而在卟啉-GNR连接系统中,能量则从卟啉的第一和第二单线态激发态(S和S)选择性地反向转移到纳米石墨烯。特别是,从卟啉的S和S态到GNR的超快高效能量转移模仿了天然光合作用光捕获系统中从类胡萝卜素的S和S态到叶绿素的相应超快能量转移。这种独特的光物理性质将有助于合理设计用于光电子学和太阳能转换器件的碳基光功能纳米材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a751/6624990/828e159f2864/c9sc01538h-s1.jpg

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