Core Modulation of Porphyrins for Chemical Sensing

Karolis Norvaiša, M. Senge
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Abstract

The inner core system of metal-free (‘free base’) porphyrins has continually served as a ligand for various metal ions, but it was only recently studied in organocatalysis due its highly tunable basicity. Highly conjugated porphyrin systems offer spectrophotometric sensitivity toward geometrical and/or electronic changes and, thus, utilizing the porphyrin core for the selective detection of substrates in solution offers significant potential for a multitude of applications. However, solvation and dilution drastically affect weak interactions by dispersing the binding agent to its surroundings. Thus, the spectroscopic detection of N–H···X-type binding in porphyrin solutions is almost impossible without especially designing the binding pocket. Here, we present the first report on the spectroscopic detection of N–H···X-type interplay in porphyrins formed by weak interactions. Protonated 2,3,7,8,12,13,17,18-octaethyl-5,10,15,20-tetrakis(2-aminophenyl) porphyrin contains coordination sites for the selective binding of charge-bearing analytes, revealing characteristic spectroscopic responses. While electronic absorption spectroscopy proved to be a particularly useful tool for the detection of porphyrin–analyte interactions in the supramolecular complexes, X-ray crystallography helped to pinpoint the orientation, flexibility, and encapsulation of substrates in the corresponding atropisomers. This charge-assisted complexation of analytes in the anion-selective porphyrin inner core system is ideal for the study of atropisomers using high-resolution NMR, since it reduces the proton exchange rate, generating static proton signals. Therefore, we were able to characterize all four rotamers of the nonplanar 2,3,7,8,12,13,17,18-octaethyl-5,10,15,20-tetrakis(2-aminophenyl) porphyrin by performing 1D and 2D NMR spectroscopic analyses of host-guest systems consisting of benzenesulfonic acid (BSA) and each porphyrin atropisomer. Lastly, a detailed assignment of the symmetry operations that are unique to porphyrin atropisomers allowed us to accurately identify the rotamers using NMR techniques only. Overall, the N–H···X-type interplay in porphyrins formed by weak interactions that form restricted H-bonding complexes is shown to be the key to unravelling the atropisomeric enigma.
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用于化学传感的卟啉核心调制
无金属卟啉(“游离碱”)的内核系统一直作为各种金属离子的配体,但由于其高度可调的碱度,直到最近才在有机催化中进行研究。高共轭卟啉系统提供对几何和/或电子变化的分光光度灵敏度,因此,利用卟啉核心对溶液中的底物进行选择性检测,为众多应用提供了巨大的潜力。然而,溶剂化和稀释通过将结合剂分散到周围环境而极大地影响弱相互作用。因此,如果不特别设计结合袋,卟啉溶液中N-H···x型结合的光谱检测几乎是不可能的。本文首次报道了弱相互作用形成的卟啉中N-H···x型相互作用的光谱检测。质子化的2,3,7,8,12,13,17,18-辛乙基-5,10,15,20-四(2-氨基苯基)卟啉含有选择性结合带电荷分析物的配位位点,显示出特征的光谱响应。虽然电子吸收光谱被证明是检测超分子络合物中卟啉-分析物相互作用的特别有用的工具,但x射线晶体学有助于确定相应的atropisomers中底物的取向、灵活性和封装性。这种负离子选择性卟啉内核系统中的电荷辅助络合分析物是使用高分辨率核磁共振研究atropisomers的理想选择,因为它降低了质子交换速率,产生静态质子信号。因此,我们能够通过对苯磺酸(BSA)和每个卟啉托罗体组成的主-客体系进行一维和二维核磁共振光谱分析,表征非平面2,3,7,8,12,13,17,18-辛乙基-5,10,15,20-四(2-氨基苯基)卟啉的所有四个旋转体。最后,对卟啉异旋体特有的对称操作的详细分配使我们能够仅使用核磁共振技术准确地识别旋转体。总的来说,卟啉中N-H···x型相互作用由弱相互作用形成的限制性氢键复合物被证明是解开atropisom异构之谜的关键。
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