Radatović Borna, Jadriško Valentino, Kamal Sherif, Kralj Marko, Novko Dino, Vujičić Nataša, Petrović Marin
Center of Excellence for Advanced Materials and Sensing Devices, Institute of Physics, Bijenička 46, 10000 Zagreb, Croatia.
ACS Appl Mater Interfaces. 2022 May 11;14(18):21727-21737. doi: 10.1021/acsami.2c03678. Epub 2022 May 2.
A major challenge in the investigation of all 2D materials is the development of synthesis protocols and tools which would enable their large-scale production and effective manipulation. The same holds for borophene, where experiments are still largely limited to characterizations of small-area samples. In contrast, our work is based on millimeter-sized borophene sheets, synthesized on an Ir(111) surface in ultrahigh vacuum. Besides high-quality macroscopic synthesis, as confirmed by low-energy electron diffraction (LEED) and atomic force microscopy (AFM), we also demonstrate a successful transfer of borophene from Ir to a Si wafer via electrochemical delamination process. Comparative Raman spectroscopy, in combination with the density functional theory (DFT) calculations, proved that borophene's crystal structure has been preserved in the transfer. Our results demonstrate successful growth and manipulation of large-scale, single-layer borophene sheets with minor defects and ambient stability, thus expediting borophene implementation into more complex systems and devices.
在所有二维材料的研究中,一个主要挑战是开发能够实现其大规模生产和有效操控的合成方案及工具。硼烯也是如此,目前实验在很大程度上仍局限于小面积样品的表征。相比之下,我们的工作基于在超高真空中于Ir(111)表面合成的毫米尺寸硼烯薄片。除了通过低能电子衍射(LEED)和原子力显微镜(AFM)证实的高质量宏观合成外,我们还展示了通过电化学脱层工艺将硼烯从Ir成功转移到硅片上。结合密度泛函理论(DFT)计算的对比拉曼光谱证明,硼烯的晶体结构在转移过程中得以保留。我们的结果表明成功生长并操控了具有少量缺陷和环境稳定性的大规模单层硼烯薄片,从而加速了硼烯在更复杂系统和器件中的应用。