单层
紧密结合
双层
双层石墨烯
凝聚态物理
带隙
哈密顿量(控制论)
电子能带结构
布里渊区
材料科学
堆积
石墨烯
电子结构
纳米技术
物理
化学
核磁共振
数学优化
生物化学
膜
数学
作者
Ying Wang,Changbao Huang,Dong Li,Ping Li,Jiangying Yu,Yuzhong Zhang,Jinrong Xu
标识
DOI:10.1088/1361-648x/ab1528
摘要
Graphene-like hexagonal boron phosphide with its moderate band gap and high carrier mobility is considered to be a high potential material for electronics and optoelectronics. In this work, the tight-binding Hamiltonian of hexagonal boron phosphide monolayer and bilayer with two stacking orders are derived in detail. Including up to fifth-nearest-neighbor in plane and next-nearest-neighbor interlayer hoppings, the tight-binding approximated band structure can well reproduce the first-principle calculations based on the screened Heyd–Scuseria–Ernzerhof hybrid functional level over the entire Brillouin zone. The band gap deviations for monolayer and bilayer between our tight-binding and first-principle results are only 2 meV. The low-energy effective Hamiltonian matrix and band structure are obtained by expanding the full band structure close to the K point. The results show that the iso-energetic lines of maximum valence band in the vicinity of K point undergo a pseudo-Lifshitz transition from h-BP monolayer to AB_B-P or AB_B-B bilayer. The mechanism of pseudo-Lifshitz transition can be attributed to two interlayer hoppings rather than one.
科研通智能强力驱动
Strongly Powered by AbleSci AI