Zhang Xiangyu, Chen Yunlei, Sun Yongfang, Ye Tian-Nan, Wen Xiao-Dong
State Key Laboratory of Coal Conversion, Institute of Coal Chemistry of CAS, Taiyuan 030001, China.
National Energy Center for Coal to Liquids, Synfuels China Co., Ltd, Huairou District, Beijing 101400, China.
ACS Omega. 2022 Apr 6;7(15):13290-13298. doi: 10.1021/acsomega.2c00956. eCollection 2022 Apr 19.
Electrides, a unique type of compound where electrons act as anions, have a high electron mobility and a low work function, which makes them promising for applications in electronic devices and high-performance catalysts. The discovery of novel electrides and the expansion of the electride family have great significance for their promising applications. Herein, we reported four three-dimensional (3D) electrides by coupling crystal structure database searches and first-principles electronic structure analysis. Subnitrides (BaN, LiBaN, NaBaN, and NaBaN) containing one-dimensional (1D) [BaN] chains are identified as 3D electrides for the first time. The anionic electrons are confined in the 3D interstitial space of BaN, LiBaN, NaBaN, and NaBaN. Interestingly, with the increase of Na content, the excess electrons of NaBaN play two roles of metallic bonding and anionic electrons. Therefore, the subnitrides containing 1D [BaN] chains can be regarded as a new family of 3D electrides, where anionic electrons reside in the 3D interstitial spaces and provide a conduction path. These materials not only are experimentally synthesizable 3D electrides but also are promising to be exfoliated into advanced 1D nanowire materials. Furthermore, our work suggests a discovery strategy of novel electrides based on one parent framework like [BaN] chains, which would accelerate the mining of electrides from the crystal structure database.
电子化物是一种独特的化合物类型,其中电子充当阴离子,具有高电子迁移率和低功函数,这使其在电子器件和高性能催化剂应用中具有广阔前景。新型电子化物的发现以及电子化物家族的扩展对其具有前景的应用具有重大意义。在此,我们通过结合晶体结构数据库搜索和第一性原理电子结构分析报告了四种三维(3D)电子化物。首次将包含一维(1D)[BaN]链的亚氮化物(BaN、LiBaN、NaBaN和NaBaN)确定为3D电子化物。阴离子电子被限制在BaN、LiBaN、NaBaN和NaBaN的三维间隙空间中。有趣的是,随着Na含量的增加,NaBaN中的过量电子起到金属键和阴离子电子的双重作用。因此,包含1D [BaN]链的亚氮化物可被视为一类新的3D电子化物家族,其中阴离子电子存在于三维间隙空间并提供传导路径。这些材料不仅是实验上可合成的3D电子化物,而且有望剥离成先进的1D纳米线材料。此外,我们的工作提出了一种基于[BaN]链等单一母体框架的新型电子化物发现策略,这将加速从晶体结构数据库中挖掘电子化物。