Feng Ji-Fei, Gao Shui-Ying, Shi Jianlin, Liu Tian-Fu, Cao Rong
State Key Laboratory of Structural Chemistry , Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences , Fuzhou 350002 , China.
School of Physical Science and Technology , ShanghaiTech University , Shanghai 201210 , China.
Inorg Chem. 2018 Mar 5;57(5):2447-2454. doi: 10.1021/acs.inorgchem.7b02595. Epub 2018 Feb 13.
Temperature plays a crucial role in both scientific research and industry. However, traditional temperature sensors, such as liquid-filled thermometers, thermocouples, and transistors, require contact to obtain heat equilibrium between the probe and the samples during the measurement. In addition, traditional temperature sensors have limitations when being used to detect the temperature change of fast-moving samples at smaller scales. Herein, the carbon quantum dots (C-QDs) functionalized metal-organic framework (MOF) composite film, a novel contactless solid optical thermometer, has been prepared via electrophoretic deposition (EPD). Instead of terephthalic acid (HBDC), 1',2',4',5'-benzenetetracarboxylic (HBTEC) acid was employed to construct a UiO-66 framework to present two uncoordinated carboxylic groups decorated on the pore surface. The uncoordinated carboxylic groups can generate negative charges, which facilitates the deposition of film on the positive electrode during the EPD process. Moreover, UiO-66-(COOH) MOFs can absorb C-QDs from the solution and prevent C-QDs from aggregating, and the well-dispersed C-QDs impart fluorescence characteristics to composites. As-synthesized composite film was successfully used to detect temperature change in the range of 97-297 K with a relative sensitivity up to 1.3% K at 297 K.
温度在科学研究和工业中都起着至关重要的作用。然而,传统的温度传感器,如充液温度计、热电偶和晶体管,在测量过程中需要接触以实现探头与样品之间的热平衡。此外,传统温度传感器在用于检测较小尺度下快速移动样品的温度变化时存在局限性。在此,通过电泳沉积(EPD)制备了碳量子点(C-QDs)功能化金属有机框架(MOF)复合薄膜,这是一种新型的非接触式固体光学温度计。使用1',2',4',5'-苯四甲酸(HBTEC)代替对苯二甲酸(HBDC)来构建UiO-66框架,以在孔表面呈现两个未配位的羧基。未配位的羧基可产生负电荷,这有助于在EPD过程中薄膜在正极上的沉积。此外,UiO-66-(COOH) MOFs可以从溶液中吸收C-QDs并防止C-QDs聚集,并且分散良好的C-QDs赋予复合材料荧光特性。合成的复合薄膜成功用于检测97-297 K范围内的温度变化,在297 K时相对灵敏度高达1.3% K。