Shuai Zhang , Bin Cui , Chunyao Niu , Fei Wang , Chong Li , Yu Jia
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引用次数: 0
Abstract
Recent experiments have identified that both boron (B) and hydrogen (H) atoms might induce atomic-scale magnetism on graphene. Using the first-principles calculations and analyses, we show that B adatom chemisorbed on 48-type topological defects in graphene not only enhances the adsorption energy dramatically, but also significantly induces a sizable atomic-scale spin moment 1.08 μB. The underlying mechanism can be attributed to the abundant charge transfer of B adatom and local bonding environment (B/tetragonal ring), facilitating to form B-C covalent bonds. However, such spin polarization does not happen on 558-type defects. In sharp contrast, H adatom can not induce sizable atomic-scale magnetism on either 48- or 558-type defect. We further identity that the moderate kinetic barrier of B adatom along 48-type line defect makes it highly possible to achieve stable antiferromagnetic spin chain. Our findings might provide another feasible host material to realize stable and sizable atomic-scale magnetism of B adatom.
期刊介绍:
Physics Letters A offers an exciting publication outlet for novel and frontier physics. It encourages the submission of new research on: condensed matter physics, theoretical physics, nonlinear science, statistical physics, mathematical and computational physics, general and cross-disciplinary physics (including foundations), atomic, molecular and cluster physics, plasma and fluid physics, optical physics, biological physics and nanoscience. No articles on High Energy and Nuclear Physics are published in Physics Letters A. The journal''s high standard and wide dissemination ensures a broad readership amongst the physics community. Rapid publication times and flexible length restrictions give Physics Letters A the edge over other journals in the field.