Wang Fangqin, Tan Lilan, Li Junyao, Cai Wenrong, Wu Datong, Kong Yong
Jiangsu Key Laboratory of Advanced Materials and Technology, School of Petrochemical Engineering, Changzhou University, Changzhou 213164, People's Republic of China.
Anal Chem. 2024 May 14;96(19):7626-7633. doi: 10.1021/acs.analchem.4c00526. Epub 2024 Apr 30.
To date, achieving enantioselective electroanalysis for electrochemically silent chiral molecules is still highly desired. Here, an ionic covalent organic framework (COF) consisting of the pyridinium cation was derived from the tripyridinium Zincke salt and 1,4-phenylenediamine in a one-pot reaction. The electrochemical measurements revealed that the ionic backbone contributed to the electron transfer with a low charge transfer resistance. Besides, the π-π interaction between the pyridinium cation and ferrocenyl unit can promote the absorption of electroactive chiral ferrocenyl reagents into the hole of COF, so as to afford the electrochemical signals by themselves, replacing the testing enantiomers. As a result, the electroactive complex used as an electrochemical platform was highly effective at enantiomerically recognizing amino alcohols (prolinol, valinol, leucinol, and alaninol) and amino acids (methionine, serine, and penicillamine), giving the ratios of current intensity between l- and d-enantiomers in the range of 1.46-1.72. Moreover, the density functional theory calculations determined the possible intermolecular interactions between the testing enantiomers and chiral selector: namely, hydrogen bonds and electrostatic attractions. Overall, the present work offers an effective strategy to enlarge the electrochemical scope for chiral recognition based on electroactive chiral COFs.
迄今为止,实现对电化学惰性手性分子的对映选择性电分析仍然是人们非常渴望的。在此,由吡啶鎓阳离子组成的离子共价有机框架(COF)通过一锅法反应由三吡啶鎓锌盐和1,4-苯二胺衍生而来。电化学测量表明,离子主链有助于电子转移,且电荷转移电阻较低。此外,吡啶鎓阳离子与二茂铁基单元之间的π-π相互作用可促进电活性手性二茂铁试剂吸收到COF的孔中,从而自身产生电化学信号,取代测试对映体。结果,用作电化学平台的电活性配合物在对映体识别氨基醇(脯氨醇、缬氨醇、亮氨醇和丙氨醇)和氨基酸(蛋氨酸、丝氨酸和青霉胺)方面非常有效,l-和d-对映体之间的电流强度比在1.46-1.72范围内。此外,密度泛函理论计算确定了测试对映体与手性选择剂之间可能的分子间相互作用:即氢键和静电吸引力。总的来说,目前的工作提供了一种有效的策略,以扩大基于电活性手性COF的手性识别的电化学范围。