Yang Chen-Kai, Jiao Liying
Key Laboratory of Organic Optoelectronics and Molecular Engineering of the Ministry of Education, Department of Chemistry, Tsinghua University, Beijing 100084, China.
ACS Nano. 2024 May 14;18(19):12276-12283. doi: 10.1021/acsnano.4c00984. Epub 2024 May 3.
Two-dimensional (2D) tetragonal FeSe has sparked extensive research interest owing to its tunable superconductivity, providing valuable insights into the design of high-temperature superconductors. Currently, the intricate Fe-Se phase diagram poses a challenge to the controlled synthesis of superconducting 2D FeSe in a pure tetragonal phase. Here, we exploit the ion-exchange property of fluorophlogopite mica to devise a straightforward approach for the phase-controlled synthesis of tetragonal FeSe on an Fe-enriched mica surface within a molten salt environment. This method successfully produces highly crystalline FeSe in a pure tetragonal phase with adjustable thickness. We investigated the surface composition of the postgrowth mica substrate using various microscopic and spectroscopic characterizations to highlight the importance of the Fe-enriched growth interface in the phase-selective synthesis of 2D tetragonal FeSe. The obtained 2D FeSe exhibited 2D superconductivity, comparable to that of FeSe mechanically exfoliated from bulk crystals, confirming the high quality of our samples. Beyond tetragonal FeSe, 2D antiferromagnetic FeTe and superconducting FeSSeTe have been phase-selectively synthesized via this approach. Our study elucidates the significance of the growth interface on the phase-selective synthesis of 2D materials and presents potential opportunities for the phase-controlled synthesis of 2D multiphase materials via the rational design of the growth interface.
二维(2D)四方相FeSe因其可调控的超导性引发了广泛的研究兴趣,为高温超导体的设计提供了有价值的见解。目前,复杂的Fe - Se相图对纯四方相超导二维FeSe的可控合成提出了挑战。在此,我们利用氟金云母的离子交换特性,设计了一种直接的方法,用于在熔盐环境中富铁云母表面进行四方相FeSe的相控合成。该方法成功制备出具有可调厚度的纯四方相高结晶度FeSe。我们使用各种显微镜和光谱表征方法研究了生长后云母衬底的表面组成,以突出富铁生长界面在二维四方相FeSe相选择性合成中的重要性。所获得的二维FeSe表现出二维超导性,与从块状晶体机械剥离的FeSe相当,证实了我们样品的高质量。除了四方相FeSe,二维反铁磁FeTe和超导FeSSeTe也已通过这种方法进行了相选择性合成。我们的研究阐明了生长界面在二维材料相选择性合成中的重要性,并通过生长界面的合理设计为二维多相材料的相控合成提供了潜在机会。