Kang Kang, Dai Xing, Shen Nannan, Xie Rongzhen, Zhang Xingwang, Lei Lecheng, Wang Shuao, Xiao Chengliang
College of Chemical and Biological Engineering, Zhejiang University, 38 Zheda Road, Hangzhou, 310027, P. R. China.
Institute of Zhejiang University-Quzhou, 78 Jiuhua Boulevard North, Quzhou, 324000, P. R. China.
Chemistry. 2021 Mar 26;27(18):5632-5637. doi: 10.1002/chem.202005362. Epub 2021 Mar 1.
As one of most problematic radionuclides, technetium-99, mainly in the form of anionic pertechnetate (TcO ), exhibits high environmental mobility, long half-life, and radioactive hazard. Due to low charge density and high hydrophobicity for this tetrahedral anion, it is extremely difficult to recognize it in water. Seeking efficient and selective recognition method for TcO is still a big challenge. Herein, a new water-stable cationic metal-organic framework (ZJU-X8) was reported, bearing tetraphenylethylene pyrimidine-based aggregation-induced emission (AIE) ligands and attainable silver sites for TcO detection. ZJU-X8 underwent an obvious spectroscopic change from brilliant blue to flavovirens and exhibited splendid selectivity towards TcO . This uncommon fluorescent recognition mechanism was well elucidated by batch sorption experiments and DFT calculations. It was found that only TcO could enter into the body of ZJU-X8 through anion exchange whereas other competing anions were excluded outside. Subsequently, after interaction between TcO and silver ions, the electron polarizations from pyrimidine rings to Ag cations significantly lowered the energy level of the π* orbital and thus reduced the π-π* energy gap, resulting in a red-shift in the fluorescent spectra.
作为最具问题的放射性核素之一,锝-99主要以阴离子高锝酸盐(TcO )的形式存在,具有高环境迁移率、长半衰期和放射性危害。由于这种四面体阴离子的低电荷密度和高疏水性,在水中极难识别它。寻找高效、选择性的高锝酸根识别方法仍然是一个巨大挑战。在此,报道了一种新型的水稳定阳离子金属有机框架(ZJU-X8),它带有基于四苯乙烯嘧啶的聚集诱导发光(AIE)配体以及可用于检测高锝酸根的银位点。ZJU-X8经历了从亮蓝色到黄绿色的明显光谱变化,并且对高锝酸根表现出出色的选择性。通过批量吸附实验和密度泛函理论计算很好地阐明了这种罕见的荧光识别机制。发现只有高锝酸根能够通过阴离子交换进入ZJU-X8的主体,而其他竞争性阴离子被排除在外。随后,在高锝酸根与银离子相互作用后,从嘧啶环到银阳离子的电子极化显著降低了π轨道的能级,从而减小了π-π能隙,导致荧光光谱发生红移。