Karmakar Avishek, Li Jing
Department of Chemistry and Chemical Biology, Rutgers University, 123 Bevier Road, Piscataway, NJ, 08854, USA.
Chem Commun (Camb). 2022 Sep 27;58(77):10768-10788. doi: 10.1039/d2cc03330e.
The replacement of traditional incandescent, halogen and fluorescent lamps by white light emitting diodes (WLEDs) is expected to reduce the global electricity consumption by one-third by 2030, according to the US Department of Energy. The current WLED technology uses rare-earth element (REE) based phosphor materials, which, not only is cost-intensive but also constitutes an environmental concern. Hence, researchers are in a quest for a new-generation of opto-electronic materials that can replace the conventional phosphors in WLEDs and thus aim towards a cleaner and more energy efficient lighting technology for the future. Luminescent metal-organic frameworks (LMOFs) have recently emerged as a new sub-class of MOFs which have demonstrated enormous potential for applications in sensing, imaging, optoelectronics and in solid-state lighting (SSL) technology. LMOFs could be game changers as lighting phosphors due to advantages such as high luminescence quantum yield, tunable excitation and emission which can be achieved by rational design and optimization of metal centers, linkers, and the guest molecules, facile fabrication into devices, and structural robustness. These clear advantageous features of LMOFs make them score over other contemporary materials, and enable them to be futuristic phosphor materials for WLED technology. In this feature article, we will provide an overview of the most recent developments of LMOF-based phosphor materials for SSL with a special focus on WLED technology. The emphasis will be centered around REE-free LMOFs, as the aim is to direct the attention of the readers towards a more viable and greener lighting technology.
据美国能源部称,用白光发光二极管(WLED)取代传统的白炽灯、卤素灯和荧光灯,预计到2030年全球电力消耗将减少三分之一。目前的WLED技术使用基于稀土元素(REE)的磷光体材料,这种材料不仅成本高昂,而且还存在环境问题。因此,研究人员正在寻找新一代的光电子材料,以取代WLED中的传统磷光体,从而朝着未来更清洁、更节能的照明技术迈进。发光金属有机框架(LMOF)最近作为MOF的一个新子类出现,已在传感、成像、光电子和固态照明(SSL)技术中展现出巨大的应用潜力。由于具有诸如高发光量子产率、可通过合理设计和优化金属中心、连接体及客体分子来实现的可调谐激发和发射、易于器件制造以及结构稳健性等优点,LMOF作为照明磷光体可能会带来变革。LMOF的这些明显优势使其优于其他当代材料,并使其成为WLED技术未来的磷光体材料。在这篇专题文章中,我们将概述基于LMOF的用于SSL的磷光体材料的最新进展,特别关注WLED技术。重点将围绕无稀土LMOF展开,目的是将读者的注意力引向更可行、更环保的照明技术。