Huang Jia-Hong, Liu Ya-Jie, Si Yubing, Cui Yao, Dong Xi-Yan, Zang Shuang-Quan
College of Chemistry, Zhengzhou University, Zhengzhou 450001, China.
College of Chemistry and Chemical Engineering, Henan Polytechnic University, Jiaozuo 454000, China.
J Am Chem Soc. 2024 Jun 5. doi: 10.1021/jacs.4c04294.
Chiral atomically precise metal clusters, known for their remarkable chiroptical properties, hold great potential for applications in chirality recognition. However, advancements in this field have been constrained by the limited exploration of host-guest chemistry, involving metal clusters. This study reports the synthesis of a chiral Cu(CBHS) (denoted as Cu@CB, where CBHSH = 9,12-(HS)-1,2--carborane) cluster by an achiral carboranylthiolate ligand. The chiral -/-Cu@CB cluster features chiral cavities reminiscent of cyclodextrins, which are surrounded by carborane clusters, yet they crystallize in a racemate. These cyclodextrin-like cavities demonstrated the specific recognition of amino acids, as indicated by the responsive output of circular dichroism and circularly polarized luminescence signals of Cu moieties of the Cu@CB cluster. Notably, a quantitative chiroptical analysis of amino acids in a short time and a concomitant deracemization of Cu@CB were achieved. Density functional tight-binding molecular dynamics simulation and noncovalent interaction analysis further unraveled the great importance of the cavities and binding sites for chiral recognition. Dipeptide, tripeptide, and polypeptide containing the corresponding amino acids (Cys, Arg, or His residues) display the same chiral recognition, showing the generality of this approach. The functional synergy of dual clusters, comprising carborane and metal clusters, is for the first time demonstrated in the Cu@CB cluster, resulting in the valuable quantification of the enantiomeric excess () value of amino acids. This work opens a new avenue for chirality sensors based on chiral metal clusters with unique chiroptical properties and inspires the development of carborane clusters in host-guest chemistry.
手性原子精确金属簇以其卓越的手性光学性质而闻名,在手性识别应用中具有巨大潜力。然而,该领域的进展受到涉及金属簇的主客体化学研究有限的制约。本研究报道了通过非手性碳硼烷硫醇盐配体合成手性Cu(CBHS)(表示为Cu@CB,其中CBHSH = 9,12-(HS)-1,2-碳硼烷)簇。手性-/-Cu@CB簇具有类似于环糊精的手性空腔,被碳硼烷簇包围,但它们以外消旋体形式结晶。这些类似环糊精的空腔表现出对氨基酸的特异性识别,如Cu@CB簇中Cu部分的圆二色性和圆偏振发光信号的响应输出所示。值得注意的是,在短时间内实现了对氨基酸的定量手性光学分析以及Cu@CB的同时消旋。密度泛函紧束缚分子动力学模拟和非共价相互作用分析进一步揭示了空腔和结合位点对手性识别的重要性。含有相应氨基酸(半胱氨酸、精氨酸或组氨酸残基)的二肽、三肽和多肽表现出相同的手性识别,表明该方法具有普遍性。首次在Cu@CB簇中证明了由碳硼烷和金属簇组成的双簇的功能协同作用,从而实现了对氨基酸对映体过量值的有价值定量。这项工作为基于具有独特手性光学性质的手性金属簇的手性传感器开辟了一条新途径,并激发了主客体化学中碳硼烷簇的发展。