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Polymorphous Luminescent Materials Based on ′T′-Shaped Molecules Bearing 4,7-Diphenylbenzo[c][1,2,5]thiadiazole Skeletons: Effect of Substituents on the Photophysical Properties
Authors:Gaowei Qian  Xiangbing Wang  Dr Shengyue Wang  Dr Yanqiong Zheng  Song Wang  Prof Weiguo Zhu  Prof Yafei Wang
Institution:1. National Experimental Demonstration Center, for Materials Science and Engineering, Jiangsu Key Laboratory of Environmentally Friendly Polymeric Materials, Jiangsu Collaborative Innovation Center of Photovoltaic Science, and Engineering, Jiangsu Engineering Laboratory of, Light–Electricity–Heat Energy Converting Materials and Applications, School of Materials Science & Engineering, Changzhou University, Changzhou, 213164 P. R. China;2. Key Laboratory of Advanced Display and System Applications of Ministry of Education, Shanghai University, 149 Yanchang Rd., Shanghai, 200072 P. R. China;3. Hubei University of Arts and Science, Xiangyang, 441053 P. R. China
Abstract:Polymorphism, the intrinsic character of one chemical compound with at least two distinct phase arrangements, plays a very key role in the photophysical properties. In this contribution, four ′T′-shaped molecules bearing the 2,1,3-benzothiadiazole (BTD) skeleton, named 5 a – 5 d , were prepared and characterized. All compounds exhibited excellent thermal stability and polymorphism in the solid state, evident from thermogravimetric analysis, differential scanning calorimetry, and polarized optical microscopy results. Intense emissions with high photoluminescent quantum yields were achieved both in solution (56–97 %) and neat films (33–98 %). All compounds possessed clearly pH-dependent luminescence properties in solution. Additionally, compound 5 d showed useful mechanochromic luminescence owing to the transformation between the crystal and amorphous state. Employing compounds 5 a – 5 d as the dopant, solution-processable organic light-emitting diodes (OLEDs) were fabricated and presented a highest external quantum efficiency of 6.15 %, which is higher than the theoretical value of fluorescence-based OLEDs (∼5 %). This research provided a novel strategy for designing high-efficiency BTD-based polymorphic luminescent materials.
Keywords:2  1  3-benzothiadiazole derivatives  organic light-emitting diodes  photophysical properties  polymorphous luminescent materials  structure–property relationship
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