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镧系功能化金属-有机框架杂化体系用于创建用于化学传感的多个发光中心。

Lanthanide-Functionalized Metal-Organic Framework Hybrid Systems To Create Multiple Luminescent Centers for Chemical Sensing.

机构信息

School of Chemical Science and Engineering, Tongji University , Siping Road 1239, Shanghai 200092, China.

出版信息

Acc Chem Res. 2017 Nov 21;50(11):2789-2798. doi: 10.1021/acs.accounts.7b00387. Epub 2017 Oct 6.

Abstract

Metal-organic frameworks (MOFs) possess an important advantage over other candidate classes for chemosensory materials because of their exceptional structural tunability and properties. Luminescent sensing using MOFs is a simple, intuitive, and convenient method to recognize species, but the method has limitations, such as insufficient chemical selectivity and signal loss. MOFs contain versatile building blocks (linkers or ligands) with special chemical reactivity, and postsynthetic modification (PSM) provides an opportunity to exploit and expand their unique properties. The linkers in most MOFs contain aromatic subunits that can readily display luminescence after ultraviolet or visible (typically blue) excitation, and this is the main luminescent nature of most MOFs. The introduction of photoactive lanthanide ions (Ln) into the MOF hosts may produce new luminescent signals at different positions from that of the MOF linker, but this depends on the intramolecular energy transfer (antenna effect) from the MOF (linkers) to the Ln ions. Controlling the Ln content in MOF hybrids may create multiple luminescent centers. The nature of the unique luminescent centers may cause different responses to sensing species (i.e., ratiometric sensing), which may provide a new opportunity for luminescence research with applications to chemical sensing. In this Account, recent research progress on using lanthanide-functionalized MOF hybrid materials to create multiple luminescent centers for chemical sensing is described. Here we propose a general strategy to functionalize MOF hosts with lanthanide ions, compounds, or other luminescent species (organic dyes or carbon dots) and to assemble types of photofunctional hybrid systems based on lanthanide-functionalized MOFs. Five main methods were used to functionalize the MOFs and assemble the hybrid materials: in situ composition, ionic doping, ionic exchange, covalent PSM, and coordinated PSM. Through the lanthanide functionalization, multiple (double or triple) luminescent centers were created with different luminescent bands in the visible region. Because of the different luminescent natures of the lanthanide ions, MOF linkers, and other species (organic dyes or carbon dots), they display different responses to sensing species. Currently, using these strategies, we have utilized a dual-response luminescent probe to realize chemical sensing of different types of cations (Fe/Fe, Hg, and Cd), anions (CrO/CrO and CO), molecules (volatile organic compounds and O), special air pollutants (formaldehyde), and biomarkers of food spoilage as well as pH and temperature. Additionally, we have achieved triple-luminescence-response sensing of ions (Ag, Hg, and S) in complicated aqueous environments, which was developed using a logic operation.

摘要

金属-有机骨架(MOFs)在化学传感材料方面比其他候选材料类具有重要优势,因为它们具有出色的结构可调性和性能。使用 MOFs 进行荧光传感是一种识别物种的简单、直观和方便的方法,但该方法存在局限性,例如化学选择性不足和信号损失。MOFs 包含具有特殊化学反应性的多功能建筑模块(连接体或配体),而后合成修饰(PSM)提供了利用和扩展其独特性质的机会。大多数 MOFs 的连接体包含芳香亚基,在紫外线或可见光(通常为蓝色)激发后可以很容易地显示出荧光,这是大多数 MOFs 的主要发光性质。将光活性镧系离子(Ln)引入 MOF 宿主中可能会在与 MOF 连接体不同的位置产生新的发光信号,但这取决于 MOF(连接体)到 Ln 离子的分子内能量转移(天线效应)。控制 MOF 杂化物中的 Ln 含量可能会产生多个发光中心。独特发光中心的性质可能会导致对传感物种的不同响应(即比率传感),这可能为化学传感应用的发光研究提供新的机会。在本报告中,描述了使用镧系功能化 MOF 杂化材料创建多个发光中心用于化学传感的最新研究进展。在这里,我们提出了一种通用策略,即用镧系离子、化合物或其他发光物种(有机染料或碳点)功能化 MOF 宿主,并基于镧系功能化 MOFs 组装各种光功能杂化系统。有五种主要方法用于功能化 MOFs 和组装杂化材料:原位组成、离子掺杂、离子交换、共价 PSM 和配位 PSM。通过镧系元素功能化,在可见光区域创建了具有不同发光带的多个(双或三)发光中心。由于镧系离子、MOF 连接体和其他物种(有机染料或碳点)的发光性质不同,它们对传感物种的响应也不同。目前,使用这些策略,我们已经利用双响应荧光探针实现了不同类型阳离子(Fe/Fe、Hg 和 Cd)、阴离子(CrO/CrO 和 CO)、分子(挥发性有机化合物和 O)、特殊空气污染物(甲醛)和食品变质标志物以及 pH 值和温度的化学传感。此外,我们还实现了在复杂水相环境中对离子(Ag、Hg 和 S)的三重发光响应传感,这是通过逻辑运算开发的。

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