覆盖层
范德瓦尔斯力
凝聚态物理
材料科学
偶极子
空格(标点符号)
相变
纳米技术
化学物理
物理
量子力学
分子
语言学
哲学
作者
Bin Shao,Xiao Jiang,Jan Berges,Sheng Meng,Bing Huang
标识
DOI:10.1088/0256-307x/40/8/087303
摘要
The interlayer hybridization (IH) of van der Waals (vdW) materials is thought to be mostly associated with the unignorable interlayer overlaps of wavefunctions ( t ) in real space. Here, we develop a more fundamental understanding of IH by introducing a new physical quantity, the IH admixture ratio α . Consequently, an exotic strategy of IH engineering in energy space can be proposed, i.e., instead of changing t as commonly used, α can be effectively tuned in energy space by changing the on-site energy difference (2 Δ ) between neighboring-layer states. In practice, this is feasible via reshaping the electrostatic potential of the surface by deposing a dipolar overlayer, e.g., crystalline ice. Our first-principles calculations unveil that IH engineering via adjusting 2 Δ can greatly tune interlayer optical transitions in transition-metal dichalcogenide bilayers, switch different types of Dirac surface states in Bi 2 Se 3 thin films, and control magnetic phase transition of charge density waves in 1H/1T-TaS 2 bilayers, opening new opportunities to govern the fundamental optoelectronic, topological, and magnetic properties of vdW systems beyond the traditional interlayer distance or twisting engineering.
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