Sun Yuqiong, Liu Shuting, Sun Luyi, Wu Shuangshuang, Hu Guangqi, Pang Xiaoliang, Smith Andrew T, Hu Chaofan, Zeng Songshan, Wang Weixing, Liu Yingliang, Zheng Mingtao
Key Laboratory for Biobased Materials and Energy of Ministry of Education/Guangdong Provincial Engineering Technology Research Center for Optical Agriculture, College of Materials and Energy, South China Agricultural University, Guangzhou, 510642, China.
Maoming Branch, Guangdong Laboratory for Lingnan Modern Agriculture, Maoming, 525000, China.
Nat Commun. 2020 Nov 5;11(1):5591. doi: 10.1038/s41467-020-19422-4.
Room temperature phosphorescence materials have inspired extensive attention owing to their great potential in optical applications. However, it is hard to achieve a room temperature phosphorescence material with simultaneous long lifetime and high phosphorescence quantum efficiency. Herein, multi-confined carbon dots were designed and fabricated, enabling room temperature phosphorescence material with simultaneous ultralong lifetime, high phosphorescence quantum efficiency, and excellent stability. The multi-confinement by a highly rigid network, stable covalent bonding, and 3D spatial restriction efficiently rigidified the triplet excited states of carbon dots from non-radiative deactivation. The as-designed multi-confined carbon dots exhibit ultralong lifetime of 5.72 s, phosphorescence quantum efficiency of 26.36%, and exceptional stability against strong oxidants, acids and bases, as well as polar solvents. This work provides design principles and a universal strategy to construct metal-free room temperature phosphorescence materials with ultralong lifetime, high phosphorescence quantum efficiency, and high stability for promising applications, especially under harsh conditions.
室温磷光材料因其在光学应用中的巨大潜力而受到广泛关注。然而,要实现同时具有长寿命和高磷光量子效率的室温磷光材料却很困难。在此,设计并制备了多受限碳点,使其成为具有超长寿命、高磷光量子效率和优异稳定性的室温磷光材料。通过高度刚性的网络、稳定的共价键和三维空间限制实现的多重限制有效地抑制了碳点三重激发态的非辐射失活。所设计的多受限碳点表现出5.72秒的超长寿命、26.36%的磷光量子效率,以及对强氧化剂、酸、碱和极性溶剂的优异稳定性。这项工作提供了设计原则和通用策略,以构建具有超长寿命、高磷光量子效率和高稳定性的无金属室温磷光材料,用于有前景的应用,特别是在苛刻条件下的应用。