Martín-Pérez Lucía, Burzurí Enrique
IMDEA Nanociencia, Campus de Cantoblanco, Calle Faraday 9, 28049 Madrid, Spain.
Departamento de Física de la Materia Condensada, Universidad Autónoma de Madrid, 28049 Madrid, Spain.
Molecules. 2021 Dec 4;26(23):7371. doi: 10.3390/molecules26237371.
Van der Waals magnetic materials are promising candidates for spintronics and testbeds for exotic magnetic phenomena in low dimensions. The two-dimensional (2D) limit in these materials is typically reached by mechanically breaking the van der Waals interactions between layers. Alternative approaches to producing large amounts of flakes rely on wet methods such as liquid-phase exfoliation (LPE). Here, we report an optimized route for obtaining monolayers of magnetic cylindrite by LPE. We show that the selection of exfoliation times is the determining factor in producing a statistically significant amount of monolayers while keeping relatively big flake areas (~1 µm). We show that the cylindrite lattice is preserved in the flakes after LPE. To study the electron transport properties, we have fabricated field-effect transistors based on LPE cylindrite. Flakes are deterministically positioned between nanoscale electrodes by dielectrophoresis. We show that dielectrophoresis can selectively move the larger flakes into the devices. Cylindrite nanoscale flakes present a p-doped semiconducting behaviour, in agreement with the mechanically exfoliated counterparts. Alternating current (AC) admittance spectroscopy sheds light on the role played by potential barriers between different flakes in terms of electron transport properties. The present large-scale exfoliation and device fabrication strategy can be extrapolated to other families of magnetic materials.
范德华磁性材料是自旋电子学领域很有前景的候选材料,也是低维奇异磁现象的试验平台。这些材料中的二维极限通常是通过机械破坏层间的范德华相互作用来实现的。生产大量薄片的替代方法依赖于诸如液相剥离(LPE)等湿法。在此,我们报道了一种通过LPE获得磁性圆柱锡矿单层的优化路线。我们表明,剥离时间的选择是在保持相对较大薄片面积(约1 µm)的同时产生具有统计学意义数量的单层的决定性因素。我们表明,LPE后薄片中的圆柱锡矿晶格得以保留。为了研究电子输运特性,我们基于LPE圆柱锡矿制造了场效应晶体管。通过介电泳将薄片确定性地放置在纳米级电极之间。我们表明,介电泳可以选择性地将较大的薄片移动到器件中。圆柱锡矿纳米级薄片呈现出p型掺杂半导体行为,这与机械剥离的对应物一致。交流(AC)导纳谱揭示了不同薄片之间的势垒在电子输运特性方面所起的作用。目前的大规模剥离和器件制造策略可以推广到其他磁性材料家族。