Liu Jingwen, Han Xue, Lu Yantong, Wang Shuo, Zhao Dian, Li Chunxia
Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Department of Chemistry, Zhejiang Normal University, Jinhua 321004, China.
Institute of Frontier and Interdisciplinarity Science and Institute of Molecular Sciences and Engineering, Shandong University, Qingdao 266237, China.
Inorg Chem. 2021 Mar 15;60(6):4133-4143. doi: 10.1021/acs.inorgchem.1c00310. Epub 2021 Mar 4.
In this study, two substituent-group-modifying tetracarboxylate ligands, 2',5'-dimethoxy-[1,1':4',1″-terphenyl]-3,3″,5,5″-tetracarboxylic acid (HTPTC-2OMe) and 2',5'-dimethyl-[1,1':4',1″-terphenyl]-3,3″,5,5″-tetracarboxylic acid (HTPTC-2Me), with similar geometries were used as the organic linkers to construct isostructural lanthanide metal-organic frameworks (LnMOFs). The as-prepared LnTPTC-2OMe and LnTPTC-2Me were structurally elucidated by means of single-crystal and powder X-ray diffraction in addition to thermogravimetric analysis and were assessed as luminescence ratiometric thermometers by obtaining the temperature dependence of the luminescence behaviors. We found that both the single lanthanide EuTPTC-2OMe and the dual lanthanide EuTbTPTC-2Me exhibited a distinct S-type luminescence response to temperatures in the range from 313 to 473 K, and their ratiometric parameters can be understood on the basis of the classic Mott-Seitz model. Energy transfers from the ligand to Tb (or Eu) and from Tb to Eu in these two systems were investigated theoretically as well as with low-temperature (77 K) time-resolved photoluminescence spectroscopy, quantum yield, and lifetime analysis. Therefore, these two materials possess a good relative sensitivity, a small temperature uncertainty, and a favorable spectral repeatability in addition to a remarkable emission color change, enhancing their potential use for temperature measurement and in situ monitoring in microelectronics.
在本研究中,两种具有相似几何结构的取代基修饰的四羧酸配体,即2',5'-二甲氧基-[1,1':4',1″-三联苯]-3,3″,5,5″-四羧酸(HTPTC-2OMe)和2',5'-二甲基-[1,1':4',1″-三联苯]-3,3″,5,5″-四羧酸(HTPTC-2Me),被用作有机连接体来构建同构的镧系金属有机框架(LnMOFs)。除热重分析外,通过单晶和粉末X射线衍射对所制备的LnTPTC-2OMe和LnTPTC-2Me进行了结构解析,并通过获得发光行为的温度依赖性将其评估为发光比率温度计。我们发现,单一镧系元素EuTPTC-2OMe和双镧系元素EuTbTPTC-2Me在313至473 K范围内对温度均表现出明显的S型发光响应,并且它们的比率参数可以基于经典的莫特-塞茨模型来理解。通过理论计算以及低温(77 K)时间分辨光致发光光谱、量子产率和寿命分析,研究了这两个体系中从配体到Tb(或Eu)以及从Tb到Eu的能量转移。因此,这两种材料除了具有显著的发射颜色变化外,还具有良好的相对灵敏度、较小的温度不确定性和良好的光谱重复性,增强了它们在微电子学中用于温度测量和原位监测的潜力。