论文标题

SMB $ _6 $薄膜的电气特性由脉冲激光沉积制备,从化学计量计算SMB $ _6 $ target

Electrical properties of SmB$_6$ thin films prepared by pulsed laser deposition from a stoichiometric SmB$_6$ target

论文作者

Batkova, Marianna, Batko, Ivan, Stobiecki, Feliks, Szymanski, Bogdan, Kuswik, Piotr, Macková, Anna, Malinský, Petr

论文摘要

在六边形的saparium hexaboride中,可能存在拓扑保护的表面,这很大程度上需要进行研究,从而可以区分来自地表状态的特性和起源于(剩余)体积的属性。 SMB6薄膜的研究代表了一种有利的方法,允许不受表面状态影响的大容量定义明确的变化。此外,对于潜在的技术应用,薄膜非常需要。然而,SMB6薄膜的生长伴随着技术问题,这些问题通常与保持samarium and Boron的正确化学计量法有关。在这里,我们介绍了来自单个化学计量的SMB6靶标的脉冲激光沉积(PLD)对SMB6薄膜合成的可行性研究。正如卢瑟福(Rutherford)的反向散射光谱法(RBS)所证明的那样,我们成功地获得了电影中与目标相同的比例。薄膜揭示了(晶体)SMB6的特性电气特性,该薄膜成功沉积在MGO,蓝宝石和玻璃陶瓷底物上,当底物保持在沉积过程中的温度为600 $^\ CIRC $ C时。进行的电阻研究表明,膜的大量性质仅受基板的影响。我们的结果表明,PLD是对SMB6和类似系统进行复杂而深入研究的合适方法。

Possible existence of topologically protected surface in samarium hexaboride has created a strong need for investigations allowing to distinguish between properties coming from the surface states and those originating in the (remaining) bulk. Studies of SmB6 thin films represent a favorable approach allowing well defined variations of the bulk volume that is not affected by surface states. Moreover, thin films are highly desirable for potential technology applications. However, the growth of SmB6 thin films is accompanied by technology problems, which are typically associated with maintaining the correct stoichiometry of samarium and boron. Here we present feasibility study of SmB6 thin film synthesis by pulsed laser deposition (PLD) from a single stoichiometric SmB6 target. As proved by Rutherford Backscattering Spectrometry (RBS), we succeeded to obtain the same ratio of samarium and boron in the films as that in the target. Thin films revealing characteristic electrical properties of (crystalline) SmB6 were successfully deposited on MgO, sapphire, and glass-ceramics substrates, when the substrates were kept at temperature of 600$^\circ$ C during the deposition. Performed electrical resistance studies have revealed that bulk properties of the films are only slightly affected by the substrate. Our results indicate that PLD is a suitable method for complex and intensive research of SmB6 and similar systems.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源