Lv Wen-Hao, Cao Qing, Song Shi-Yu, Liang Ya-Chuan, Zhou Rui, Liu Kai-Kai, Shan Chong-Xin
Henan Key Laboratory of Diamond Optoelectronic Materials and Devices, School of Physics and Microelectronics, Zhengzhou University, Zhengzhou, 450052, China.
Institute of Quantum Materials and Physics, Henan Academy of Sciences, Zhengzhou, 450046, China.
Small. 2023 Aug;19(31):e2302504. doi: 10.1002/smll.202302504. Epub 2023 Jun 6.
Phosphorescent materials as block elements to build artwork incorporating the time and emission, enable them with spectacular lighting effects. In this work, enhanced phosphorescence of carbon nanodots (CNDs) is demonstrated via double confinement strategy, which silica and epoxy resin are used as the first and the second order confinement layer. The multi-confined CNDs show an enhanced phosphorescence quantum yield up to 16.4%, with enduring emission lifetime up to 1.44 s. Delicately, the plasticity of the epoxy resin enables them easily to be designed for 3D artworks with long emission lifetimes in different shapes. The efficient and eco-friendly phosphorescent CNDs may arouse intense interest both in the academic community and markets.
磷光材料作为构建融合时间与发光的艺术品的关键元素,赋予它们惊人的照明效果。在这项工作中,通过双重限制策略展示了碳纳米点(CND)的增强磷光,其中二氧化硅和环氧树脂分别用作第一和第二级限制层。多重限制的碳纳米点显示出高达16.4%的增强磷光量子产率,以及长达1.44秒的持久发光寿命。巧妙的是,环氧树脂的可塑性使它们能够轻松地设计成具有不同形状且发光寿命长的3D艺术品。高效且环保的磷光碳纳米点可能会在学术界和市场上引起浓厚兴趣。