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一种发光明稀土 MOF 纳米杂化材料,用于在生理范围内进行高灵敏度比率型温度传感。

A luminescent Lanthanide-free MOF nanohybrid for highly sensitive ratiometric temperature sensing in physiological range.

机构信息

Faculty of Materials Science and Chemical Engineering, Ningbo University, Ningbo 315211, Zhejiang, China.

Faculty of Materials Science and Chemical Engineering, Ningbo University, Ningbo 315211, Zhejiang, China.

出版信息

Talanta. 2018 May 1;181:410-415. doi: 10.1016/j.talanta.2018.01.024. Epub 2018 Jan 31.

Abstract

Luminescent MOF materials with tunable emissions and energy/charge transfer processes have been extensively explored as ratiometric temperature sensors. However, most of the ratiometric MOF thermometers reported thus far are based on the MOFs containing photoactive lanthanides, which are potentially facing cost issue and serious supply shortage. Here, we present a ratiometric luminescent thermometer based on a dual-emitting lanthanide-free MOF hybrid, which is developed by encapsulation of a fluorescent dye into a robust nanocrystalline zirconium-based MOF through a one-pot synthesis approach. The structure and morphology of the hybrid product was characterized by Powder X-ray diffraction (PXRD), N adsorption-desorption measurement and Scanning electron microscopy (SEM). The pore confinement effect well isolates the guest dye molecules and therefore suppresses the nonradiative energy transfer process between dye molecules. The incorporated dye emission is mainly sensitized by the organic linkers within MOF through fluorescence resonance energy transfer. The ratiometric luminescence of the MOF hybrid shows a significant response to temperature due to the thermal-related back energy transfer process from dye molecules and organic linkers, thus can be exploited for self-calibrated temperature sensing. The maximum thermometric sensitivity is 1.19% °C in the physiological temperature range, which is among the highest for the ratiomtric MOF thermometers that operating in 25-45°C. The temperature resolution is better than 0.1°C over the entire operative range (20-60°C). By integrating the advantages of excellent stability, nanoscale nature, and high sensitivity and precision in the physiological temperature range, this dye@MOF hybrid might have potential application in biomedical diagnosis. What' more, this work has expanded the possibility of non-lanthanide luminescent MOF materials for the development of ratiometric temperature sensors.

摘要

具有可调发射和能量/电荷转移过程的发光 MOF 材料已被广泛探索用于比色温度传感器。然而,迄今为止报道的大多数比色 MOF 温度计都是基于含有光活性镧系元素的 MOF,这可能面临成本问题和严重的供应短缺。在这里,我们提出了一种基于双发射无镧系 MOF 杂化材料的比色发光温度计,该杂化材料是通过一锅合成方法将荧光染料封装在坚固的纳米晶锆基 MOF 中而开发的。杂化产物的结构和形态通过粉末 X 射线衍射(PXRD)、N 吸附-解吸测量和扫描电子显微镜(SEM)进行了表征。孔限制效应很好地隔离了客体染料分子,从而抑制了染料分子之间的非辐射能量转移过程。掺入的染料发射主要通过荧光共振能量转移由 MOF 内的有机配体敏化。MOF 杂化材料的比色发光对温度有显著的响应,因为温度相关的反向能量转移过程来自染料分子和有机配体,因此可以用于自校准温度传感。在生理温度范围内,最大的测温灵敏度为 1.19%°C,这在工作温度范围为 25-45°C 的比色 MOF 温度计中是最高的之一。在整个工作范围内(20-60°C),温度分辨率优于 0.1°C。通过整合在生理温度范围内具有优异稳定性、纳米级性质、高灵敏度和精度的优势,这种染料@MOF 杂化材料可能在生物医学诊断中有潜在的应用。此外,这项工作扩展了非镧系发光 MOF 材料在比色温度传感器开发中的可能性。

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