Ji Wei, Xue Bin, Bera Santu, Guerin Sarah, Shimon Linda J W, Ma Qing, Tofail Syed A M, Thompson Damien, Cao Yi, Wang Wei, Gazit Ehud
School of Molecular Cell Biology and Biotechnology, George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv 6997801, Israel.
National Laboratory of Solid State Microstructure, Department of Physics, Nanjing University, Nanjing 210093, Jiangsu, China.
Mater Today Chem. 2021 Jan;42:29-40. doi: 10.1016/j.mattod.2020.10.007.
Amino acid chirality plays an important role in conveying directionality and specificity to their supramolecular organization. However, the impact of enantiopure and racemic amino acids on the favorable packing and macroscopic properties of organic cocrystals with nonchiral coformers is poorly understood. Herein, we performed a systematic study of the effect of chirality on the macroscopic properties of acetylated alanine (AcA) single crystals and cocrystals with a nonchiral photo-sensitive bipyridine derivative (BPE). Cocrystallization with BPE produced a marked morphology transition that improved the supramolecular chirality, thermal stability and mechanical strength of AcA crystals. The distinct supramolecular packing modes were analyzed by X-ray crystallography. The highest rigidity was observed for BPE/DL-ACA, WHILE BPE/D-ACA AND BPE/L-ACA crystals exhibited higher efficiency of photo-induced emission for fluorescent imprinting, as well as significantly higher piezoelectricity. This work provides a striking illustration that subtle differences in amino acid stereochemistry translate into tunable macroscopic properties of organic cocrystals for future applications in rigid solids, fluorescent imprinting, and energy harvesting.
氨基酸手性在赋予其超分子结构方向性和特异性方面起着重要作用。然而,对映体纯和外消旋氨基酸对与非手性共形成物的有机共晶体的有利堆积和宏观性质的影响却知之甚少。在此,我们对乙酰化丙氨酸(AcA)单晶以及与非手性光敏联吡啶衍生物(BPE)形成的共晶体的手性对宏观性质的影响进行了系统研究。与BPE共结晶产生了显著的形态转变,改善了AcA晶体的超分子手性、热稳定性和机械强度。通过X射线晶体学分析了不同的超分子堆积模式。观察到BPE/DL-ACA的刚性最高,而BPE/D-ACA和BPE/L-ACA晶体在荧光印记方面表现出更高的光致发光效率,以及显著更高的压电性。这项工作提供了一个引人注目的例证,即氨基酸立体化学的细微差异转化为有机共晶体可调节的宏观性质,以便在刚性固体、荧光印记和能量收集等未来应用中使用。