论文标题

范德华生长期间的同种异体和相变

Pnictogens Allotropy and Phase Transformation during van der Waals Growth

论文作者

Fortin-Deschênes, Matthieu, Zschiesche, Hannes, Menteş, Tevfik O., Locatelli, Andrea, Jacobberger, Robert M., Genuzio, Francesca, Lagos, Maureen J., Biswas, Deepnarayan, Jozwiak, Chris, Miwa, Jill A., Ulstrup, Søren, Bostwick, Aaron, Rotenberg, Eli, Arnold, Michael S., Botton, Gianluigi A., Moutanabbir, Oussama

论文摘要

pnictogen具有多种同素异形形式,由其NS2 NP3价电子构型产生,使其成为整个组中层次结晶的唯一元素材料和Quasi-VDW结构。光基VA元件在分层的正骨A17相(例如黑磷)中发现,并且可以在高压下向分层的菱形A7相过渡。另一方面,较重的元素仅在A7阶段稳定。在此,我们证明了这两个阶段不仅在弱相互作用的表面上的VDW生长期间共存,而且还进行了从A17相到热力学稳定的A7相的自发转化。通过实时研究揭示了其厚度驱动的A7相和其电子特性的伴随演化,A17相的这种亚稳定性揭示了其厚度驱动的过渡。在〜4 nm的临界厚度下,A17锑经历了从AB到AA堆叠的α-抗乙烯的无扩散的洗牌过渡,然后逐渐放松到A7散装相。此外,发现该中间相的电子结构是由表面自passivation和块状A7-和A17样键之间的相关竞争决定的。这些结果突出了原子结构和界面相互作用在塑造VDW分层材料的稳定性和电子特性中的关键作用,从而使新的自由度使用可扩展过程来设计其性质。

Pnictogens have multiple allotropic forms resulting from their ns2 np3 valence electronic configuration, making them the only elemental materials to crystallize in layered van der Waals (vdW) and quasi-vdW structures throughout the group. Light group VA elements are found in the layered orthorhombic A17 phase such as black phosphorus, and can transition to the layered rhombohedral A7 phase at high pressure. On the other hand, bulk heavier elements are only stable in the A7 phase. Herein, we demonstrate that these two phases not only co-exist during the vdW growth of antimony on weakly interacting surfaces, but also undertake a spontaneous transformation from the A17 phase to the thermodynamically stable A7 phase. This metastability of the A17 phase is revealed by real-time studies unraveling its thickness-driven transition to the A7 phase and the concomitant evolution of its electronic properties. At a critical thickness of ~4 nm, A17 antimony undergoes a diffusionless shuffle transition from AB to AA stacked alpha-antimonene followed by a gradual relaxation to the A7 bulk-like phase. Furthermore, the electronic structure of this intermediate phase is found to be determined by surface self-passivation and the associated competition between A7- and A17-like bonding in the bulk. These results highlight the critical role of the atomic structure and interfacial interactions in shaping the stability and electronic characteristics of vdW layered materials, thus enabling a new degree of freedom to engineer their properties using scalable processes.

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