Chirality Remote Control in Nanoporous Materials by Circularly Polarized Light

化学 纳米孔 手性(物理) 纳米技术 圆极化 光学 有机化学 物理 核物理学 夸克 Nambu–Jona Lasinio模型 手征对称破缺 微带线 材料科学
作者
Anemar Bruno Kanj,Jochen Bürck,Nina Vankova,Chun Li,Dragos Mutruc,Abhinav Chandresh,Stefan Hecht,Thomas Heine,Lars Heinke
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:143 (18): 7059-7068 被引量:63
标识
DOI:10.1021/jacs.1c01693
摘要

The ability to dynamically control chirality remains a grand challenge in chemistry. Although many molecules possess chiral isomers, lacking their isolation, for instance during photoisomerization, results in racemic mixtures with suppressed enantiospecific chiral properties. Here, we present a nanoporous solid in which chirality and enantioselective enrichment is induced by circularly polarized light (CPL). The material is based on photoswitchable fluorinated azobenzenes attached to the scaffold of a crystalline metal-organic framework (MOF). The azobenzene undergoes trans-to-cis-photoisomerization upon irradiation with green light and reverts back to trans upon violet light. While each moiety in cis conformation is chiral, we show the trans isomer also possesses a nonplanar, chiral conformation. During photoisomerization with unpolarized light, no enantiomeric enrichment is observed and both isomers, R- and S-cis as well as R- and S-trans, respectively, are formed in identical quantities. In contrast, CPL causes chiral photoresolution, resulting in an optically active material. Right-CPL selectively excites R-cis and R-trans enantiomers, producing a MOF with enriched S-enantiomers, and vice versa. The induction of optical activity is reversible and only depends on the light-handedness. As shown by first-principle DFT calculations, while both, trans and cis, are stabilized in nonplanar, chiral conformations in the MOF, the trans isomer adopts a planar, achiral form in solution, as verified experimentally. This shows that the chiral photoresolution is enabled by the linker reticulation in the MOF. Our study demonstrates the induction of chirality and optical activity in solid materials by CPL and opens new opportunities for chiral resolution and information storage with CPL.
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