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Phase transition of germanene prepared by atomic segregation epitaxy at Ag(111) thin films on Ge(111)

柚原 淳司*; 前田 匠汰*; 勝部 大樹*; 鈴木 誠也   ; 寺澤 知潮   ; 高倉 将一*; 仲武 昌史*; Le Lay, G.*

Yuhara, Junji*; Maeda, Shota*; Katsube, Daiki*; Suzuki, Seiya; Terasawa, Tomoo; Takakura, Shoichi*; Nakatake, Masashi*; Le Lay, G.*

This study aims to investigate the temperature-dependent structure of germanene prepared by atomic segregation epitaxy on an Ag(111) thin film surface. A germanene (7$$sqrt{7}$$ $$times$$ 7$$sqrt{7}$$) superstructure, obtained upon heating at 500 $$^{circ}$$C followed by cooling at room temperature, transforms into a germanene ($$sqrt{109}$$ $$times$$ $$sqrt{109}$$) superstructure after further annealing at 250 $$^{circ}$$C and subsequently evolves into the Ag-Ge surface alloy upon annealing at 350 $$^{circ}$$C, as evidenced from the thorough analysis by scanning tunneling microscopy, low-energy electron diffraction, and core-level (CL) photoemission spectroscopy. Angle-resolved CL spectra reveal that germanium preferentially occupies the topmost atomic layer, forming the (7$$sqrt{7}$$ $$times$$ 7$$sqrt{7}$$) and ($$sqrt{109}$$ $$times$$ $$sqrt{109}$$) superstructures. In contrast, germanium is distributed within at least a few layers for the striped incommensurate surface alloy phase. From angle-resolved photoemission spectroscopy, the electronic structures of the (7$$sqrt{7}$$ $$times$$ 7$$sqrt{7}$$) and ($$sqrt{109}$$ $$times$$ $$sqrt{109}$$) superstructures appear to be almost the same. Based on these considerations, the surface phase diagram of Ge/Ag(111)/Ge(111) has been constructed. These findings provide insights into the relationship between germanene thermal stability and Ge concentration at the surface region of Ag(111).

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