Liu Dan-Yang, Xiong Lin-Yuan, Dong Xi-Yan, Han Zhen, Liu Hua-Li, Zang Shuang-Quan
Henan Key Laboratory of Crystalline Molecular Functional Materials, Henan International Joint Laboratory of Tumor Theranostical Cluster Materials, Green Catalysis Center, and College of Chemistry, Zhengzhou University, Zhengzhou, 450001, China.
College of Chemistry and Chemical Engineering, Henan Polytechnic University, Jiaozuo, 454000, China.
Angew Chem Int Ed Engl. 2024 Nov 11;63(46):e202410416. doi: 10.1002/anie.202410416. Epub 2024 Oct 8.
Precise control over the organic composition is crucial for tailoring the distinctive structures and properties of hybrid metal halides. However, this approach is seldom utilized to develop materials that exhibit stimuli-responsive circularly polarized luminescence (CPL). Herein, we present the synthesis and characterization of enantiomeric hybrid zinc bromides: biprotonated ((R/S)-CHN)ZnBr ((R/S-LH2)ZnBr) and monoprotonated ((R/S)-CHN)ZnBr ((R/S-LH1)ZnBr), derived from the chiral organic amine (R/S)-2,3,4,9-Tetrahydro-1H-carbazol-3-amine ((R/S)-CHN). These compounds showcase luminescent properties; the zero-dimensional biprotonated form emits green light at 505 nm, while the monoprotonated form, with a pseudo-layered structure, displays red luminescence at 599 and 649 nm. Remarkably, the reversible local protonation-deprotonation behavior of the organic cations allows for exposure to polar solvents and heating to induce reversible structural and luminescent transformations between the two forms. Theoretical calculations reveal that the lower energy barrier associated with the deprotonation process within the pyrrole ring is responsible for the local protonation-deprotonation behavior observed. These enantiomorphic hybrid zinc bromides also exhibit switchable circular dichroism (CD) and CPL properties. Furthermore, their chloride counterparts were successfully obtained by adjusting the halogen ions. Importantly, the unique stimuli-responsive CPL characteristics position these hybrid zinc halides as promising candidates for applications in information storage, anti-counterfeiting, and information encryption.
精确控制有机组成对于定制杂化金属卤化物独特的结构和性质至关重要。然而,这种方法很少用于开发具有刺激响应圆偏振发光(CPL)的材料。在此,我们展示了对映体杂化溴化锌的合成与表征:双质子化的((R/S)-CHN)ZnBr((R/S-LH2)ZnBr)和单质子化的((R/S)-CHN)ZnBr((R/S-LH1)ZnBr),它们衍生自手性有机胺(R/S)-2,3,4,9-四氢-1H-咔唑-3-胺((R/S)-CHN)。这些化合物展现出发光特性;零维双质子化形式在505 nm处发射绿光,而具有准层状结构的单质子化形式在599和649 nm处显示红色发光。值得注意的是,有机阳离子可逆的局部质子化-去质子化行为使得暴露于极性溶剂和加热会诱导两种形式之间可逆的结构和发光转变。理论计算表明,吡咯环内去质子化过程相关的较低能垒是观察到的局部质子化-去质子化行为的原因。这些对映体杂化溴化锌还表现出可切换的圆二色性(CD)和CPL特性。此外,通过调节卤素离子成功获得了它们的氯化物对应物。重要的是,独特的刺激响应CPL特性使这些杂化卤化锌成为信息存储、防伪和信息加密应用中有前景的候选材料。