Di Bernardo Iolanda, Ripoll-Sau Joan, Silva-Guillén Jose Angel, Calleja Fabian, Ayani Cosme G, Miranda Rodolfo, Canadell Enric, Garnica Manuela, Vázquez de Parga Amadeo L
Departamento de Física de la Materia Condensada, Universidad Autónoma de Madrid, Madrid, 28049, Spain.
ARC Centre of Excellence in Future Low-Energy Electronics Technologies, Monash University, Victoria, 3800, Australia.
Small. 2023 Jul;19(29):e2300262. doi: 10.1002/smll.202300262. Epub 2023 Apr 8.
Polymorphic phases and collective phenomena-such as charge density waves (CDWs)-in transition metal dichalcogenides (TMDs) dictate the physical and electronic properties of the material. Most TMDs naturally occur in a single given phase, but the fine-tuning of growth conditions via methods such as molecular beam epitaxy (MBE) allows to unlock otherwise inaccessible polymorphic structures. Exploring and understanding the morphological and electronic properties of new phases of TMDs is an essential step to enable their exploitation in technological applications. Here, scanning tunneling microscopy (STM) is used to map MBE-grown monolayer (ML) TaTe . This work reports the first observation of the 1H polymorphic phase, coexisting with the 1T, and demonstrates that their relative coverage can be controlled by adjusting synthesis parameters. Several superperiodic structures, compatible with CDWs, are observed to coexist on the 1T phase. Finally, this work provides theoretical insight on the delicate balance between Te…Te and Ta-Ta interactions that dictates the stability of the different phases. The findings demonstrate that TaTe is an ideal platform to investigate competing interactions, and indicate that accurate tuning of growth conditions is key to accessing metastable states in TMDs.
过渡金属二硫属化物(TMDs)中的多晶相和集体现象——如电荷密度波(CDWs)——决定了材料的物理和电子性质。大多数TMDs自然以单一给定相存在,但通过分子束外延(MBE)等方法对生长条件进行微调,可以解锁其他难以获得的多晶结构。探索和理解TMDs新相的形态和电子性质是使其在技术应用中得到利用的关键一步。在此,扫描隧道显微镜(STM)用于绘制MBE生长的单层(ML)TaTe的图谱。这项工作首次报道了与1T相共存的1H多晶相的观察结果,并表明可以通过调整合成参数来控制它们的相对覆盖率。观察到几种与CDWs兼容的超周期结构共存于1T相上。最后,这项工作提供了关于决定不同相稳定性的Te…Te和Ta-Ta相互作用之间微妙平衡的理论见解。研究结果表明,TaTe是研究竞争相互作用的理想平台,并表明精确调整生长条件是在TMDs中获得亚稳态的关键。