Ajantha Joseph, Yuvaraj Palani, Karuppusamy Masiyappan, Easwaramoorthi Shanmugam
Inorganic & Physical Chemistry Laboratory, CSIR-Central Leather Research Institute Adyar, Chennai, 600020, India.
University of Madras, Chepauk, Chennai, 600005, India.
Chemistry. 2021 Aug 5;27(44):11319-11325. doi: 10.1002/chem.202100748. Epub 2021 Jun 25.
White-light emission (WLE) from a single molecule is a highly desirable alternative to a complex mixture of complementary colour emitters, which suffers from poor stability and reproducibility for potential use in organic electronic devices and lighting applications. We report single-molecule WLE both in solution and thin films by judiciously controlled π-electron delocalisation between the triarylamine subchromophoric units. Triphenylamine (TPA) forms the central core, and the phenyl rings are substituted with the electron-deficient acceptor 3-ethylrhodanine (Rh) and electron-rich donors triphenylamine or carbazole. The enforced biphenyl configuration of the TPA core and the other donors renders the π-conjugation across the entire chromophore poor, thus the individual subchromophoric units retain their individual emission characteristics, which cover all three primary colour emissions, that is, red, green and blue (RGB). TPA-Rh units exhibit broad fluorescence in the green-red region originating from the local excited (LE) state and intramolecular charge transfer state (ICT), strongly influenced by the solvent, water, and temperature. Different fluorescence parameters, including spectral maxima, ratiometric changes in ICT emission at the expense of blue emission from terminal donor units, and changes in lifetime, have a linear relationship with temperature between 180-330 K, thus the molecules can function as a multiparameter luminescent molecular thermometer. A temperature coefficient of 0.19 K in ratiometric fluorescence changes along with a spectral shift of 0.3 nm K and their workability over the wide temperature makes these molecules promising materials for potential applications. At lower temperatures, individual subchromophoric properties subside because of the reduced dihedral angle of biphenyl, and fluorescence from the whole molecule becomes dominant.
单分子白光发射(WLE)是一种极具吸引力的替代方案,可取代互补色发射体的复杂混合物,后者在用于有机电子器件和照明应用时稳定性和再现性较差。我们通过明智地控制三芳基胺亚发色团单元之间的π电子离域,报道了溶液和薄膜中的单分子WLE。三苯胺(TPA)形成中心核,苯环被缺电子受体3-乙基罗丹宁(Rh)和富电子供体三苯胺或咔唑取代。TPA核和其他供体的强制联苯构型使整个发色团的π共轭较差,因此各个亚发色团单元保留其各自的发射特性,涵盖所有三种原色发射,即红色、绿色和蓝色(RGB)。TPA-Rh单元在绿-红区域表现出宽泛的荧光,源于局域激发(LE)态和分子内电荷转移态(ICT),受溶剂、水和温度的强烈影响。不同的荧光参数,包括光谱最大值、以末端供体单元的蓝色发射为代价的ICT发射的比例变化以及寿命变化,在180 - 330 K之间与温度呈线性关系,因此这些分子可作为多参数发光分子温度计。比例荧光变化的温度系数为0.19 K,光谱位移为0.3 nm K,并且它们在宽温度范围内的可操作性使这些分子成为潜在应用的有前途的材料。在较低温度下,由于联苯二面角减小,各个亚发色团性质减弱,整个分子的荧光占主导。