Guan Yeqin, Wen Hong, Cui Kaixun, Wang Qianru, Gao Wenbo, Cai Yongli, Cheng Zibo, Pei Qijun, Li Zhao, Cao Hujun, He Teng, Guo Jianping, Chen Ping
Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, China.
Center of Materials and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, China.
Nat Chem. 2024 Mar;16(3):373-379. doi: 10.1038/s41557-023-01395-8. Epub 2024 Jan 16.
Photon-driven chemical processes are usually mediated by oxides, nitrides and sulfides whose photo-conversion efficiency is limited by charge carrier recombination. Here we show that lithium hydride undergoes photolysis upon ultraviolet illumination to yield long-lived photon-generated electrons residing in hydrogen vacancies, known as F centres. We demonstrate that photon-driven dehydrogenation and dark rehydrogenation over lithium hydride can be fulfilled reversibly at room temperature, which is about 600 K lower than the corresponding thermal process. As light-driven F centre generation could provide an alternative approach to charge carrier separation to favour chemical transformations that are kinetically or thermodynamically challenging, we show that light-activated lithium hydride cleaves the N≡N triple bond to form a N-H bond under mild conditions. Co-feeding a N/H mixture with low H partial pressure leads to photocatalytic ammonia formation at near ambient conditions. This work provides insights into the development of advanced materials and processes for light harvesting and conversion.
光子驱动的化学过程通常由氧化物、氮化物和硫化物介导,其光转换效率受电荷载流子复合的限制。在此我们表明,氢化锂在紫外线照射下会发生光解,产生驻留在氢空位中的长寿命光子产生的电子,即所谓的F中心。我们证明,在室温下,氢化锂上的光子驱动脱氢和暗态再氢化可以可逆地实现,这比相应的热过程温度低约600K。由于光驱动F中心的产生可以提供一种电荷载流子分离的替代方法,以促进动力学或热力学上具有挑战性的化学转化,我们表明光活化的氢化锂在温和条件下能裂解N≡N三键形成N-H键。在低H分压下共进料N/H混合物会导致在接近环境条件下光催化合成氨。这项工作为光捕获和转换的先进材料及过程的开发提供了见解。