论文标题
分辨少量抗氨基/石墨烯异质结构
Resolving Few-Layer Antimonene/Graphene Heterostructures
论文作者
论文摘要
二维(2D)锑(SB,抗氨基)最近由于其特殊的电子特性以及其作为下一代电池中阳极材料的适用性而引起了兴趣。然而,SB表现出较大的多态性/同种结构多样性,这也受SB的支持影响。因此,了解SB异质结构的形成是2D SB集成中的关键。特别是2D SB/石墨烯界面作为电池中电子和电极的触点,至关重要。因此,我们在这里通过原子分辨率(扫描)透射电子显微镜研究了很少的2D SB/石墨烯异烯异构结构。我们发现两种SB形态的共存:第一个是与β-SB(001)||石墨烯(001)纹理的分层β-SB的2D生长形态。第二是一维(1D)SB纳米线,可以与beta-SB [2-21]垂直于石墨烯(001)纹理匹配β-SB,并且在结构上也与热力学非偏爱的立方体SB(001)|| Chapeene(001)密切相关。重要的是,两种SB形态都表现出具有石墨烯支持的旋转范德 - 瓦尔人的外观。尽管浅表SB-氧化层的形成值得考虑,包括形成新型的外观外观SB2O3(111)/beta-SB(001)异质结构,但两种SB形态对环境散装氧化都具有很好的弹性。精确的SB生长行为对使用的处理和底物特性敏感,包括直接石墨烯支持下的支撑性质。这引入了直接2D支持下的基板作为2D SB异质结构形成中的关键参数。我们的工作提供了有关2D SB和2D SB/石墨烯异质结构中丰富阶段和外观景观的见解。
Two-dimensional (2D) antimony (Sb, antimonene) recently attracted interest due to its peculiar electronic properties and its suitability as anode material in next generation batteries. Sb however exhibits a large polymorphic/allotropic structural diversity, which is also influenced by the Sb's support. Thus understanding Sb heterostructure formation is key in 2D Sb integration. Particularly 2D Sb/graphene interfaces are of prime importance as contacts in electronics and electrodes in batteries. We thus study here few-layered 2D Sb/graphene heterostructures by atomic-resolution (scanning) transmission electron microscopy. We find the co-existence of two Sb morphologies: First is a 2D growth morphology of layered beta-Sb with beta-Sb(001)||graphene(001) texture. Second are one-dimensional (1D) Sb nanowires which can be matched to beta-Sb with beta-Sb[2-21] perpendicular to graphene(001) texture and are structurally also closely related to thermodynamically non-preferred cubic Sb(001)||graphene(001). Importantly, both Sb morphologies show rotational van-der-Waals epitaxy with the graphene support. Both Sb morphologies are well resilient against environmental bulk oxidation, although superficial Sb-oxide layer formation merits consideration, including formation of novel epitaxial Sb2O3(111)/beta-Sb(001) heterostructures. Exact Sb growth behavior is sensitive on employed processing and substrate properties including, notably, the nature of the support underneath the direct graphene support. This introduces the substrate underneath a direct 2D support as a key parameter in 2D Sb heterostructure formation. Our work provides insights into the rich phase and epitaxy landscape in 2D Sb and 2D Sb/graphene heterostructures.