自旋电子学
材料科学
硫族元素
单层
制作
热稳定性
金属
导电体
金属有机骨架
纳米技术
多孔性
过渡金属
凝聚态物理
结晶学
化学工程
物理化学
铁磁性
化学
催化作用
复合材料
冶金
物理
吸附
病理
生物化学
工程类
替代医学
医学
作者
Bohayra Mortazavi,Masoud Shahrokhi,Tanveer Hussain,Xiaoying Zhuang,Timon Rabczuk
标识
DOI:10.1016/j.apmt.2019.03.002
摘要
Most recently, Cu-hexahydroxybenzene MOF was for the time experimentally realized, through a kinetically controlled approach. Cu-HHB belongs to the family of conductive MOFs with a chemical formula of M3(C6X6)2(X=NH, O, S). Motivated by the recent experimental advance in the fabrication of Cu-HHB, we conducted extensive first-principles simulations to explore the thermal stability, mechanical properties and electronic characteristics of M3(C6X6)2(M= Co, Cr, Cu, Fe, Mn, Ni, Pd, Rh and X= O, S, Se) monolayers. First-principles results confirm that all considered 2D porous lattices are thermally stable at high temperatures over 1500 K. It was moreover found that these novel 2D structures can exhibit linear elasticity with considerable tensile strengths, revealing their suitability for practical applications in nanodevices.Depending on the metal and chalcogen atoms in M3(C6X6)2 monolayers, they can yield various electronic and magnetic properties, such as; magnetic semiconducting, perfect half metallic, magnetic and nonmagnetic metallic behaviours. This work highlights the outstanding physics of M3(C6X6)2 2D porous lattices and will hopefully help to expand this conductive MOF family, as promising candidates to design advanced energy storage/conversion, electronics and spintronics systems.
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