发光
再结晶(地质)
金属有机骨架
溶解
机制(生物学)
材料科学
化学工程
金属
化学
光电子学
物理化学
吸附
冶金
地质学
哲学
古生物学
认识论
工程类
作者
Yunyi Cui,Huangjie Lu,Huiliang Hou,Yaoyao Bai,Junpu Yang,Yarui Li,Jie Qiu,Shuao Wang,Jian Lin
标识
DOI:10.1002/anie.202410453
摘要
Abstract Thorium, a predominant actinide in the Earth's crust, presents significant environmental and health risks due to its radioactive nature. These risks are particularly pronounced during the mining and processing of monazite for rare earth elements (REEs), which contain substantial thorium concentrations. Current instrumental analysis methods for thorium, offer high accuracy but require laborious sample preparations and expensive instruments, making them unsuitable for on‐site analysis. Herein, we present a class of color‐tunable luminescent lanthanide‐based metal–organic frameworks (Ln‐MOFs) as fluorochromic sensors for Th 4+ cations. Utilizing a heterobimetallic Eu 3+ /Tb 3+ doping strategy, the luminescence colors of Eu x Tb 1‐x ‐BDC‐OH can be finely tuned from red, to orange, and to green. More intriguingly, the higher Lewis acidity of Th 4+ facilitates the transformation of Eu x Tb 1‐x ‐BDC‐OH into a UiO‐type Th‐MOF via a dissolution‐recrystallization mechanism. This process results in a gradual reduction of characteristic Ln 3+ emissions and the emergence of blue color ligand‐based fluorescence, thereby leading to selective fluorochromic responses with increasing Th 4+ concentrations and enabling visible detection of Th 4+ cations. Additionally, a custom‐built portable optoelectronic device is fabricated, which directly converts luminescence colors into red‐green‐blue (RGB) values. This device enables easy quantification of Th 4+ concentrations without the need for complex instrumentation.
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