论文标题

通过铯插入将钼二硫化物从其底物中脱钩

Decoupling Molybdenum Disulfide from its Substrate by Cesium Intercalation

论文作者

Sant, Roberto, Lisi, Simone, Nguyen, Van Dung, Mazaleyrat, Estelle, Herrero, Ana Cristina Gómez, Geaymond, Olivier, Guisset, Valérie, David, Philippe, Marty, Alain, Jamet, Matthieu, Chapelier, Claude, Magaud, Laurence, Dappe, Yannick J., Bianchi, Marco, Hofmann, Philip, Renaud, Gilles, Coraux, Johann

论文摘要

层状过渡金属二分法中的碱原子的插入是通往新一代电池的可能途径。这也是一种诱导结构相变的方法,授权在此类材料中实现光学开关和电气开关。插入过程主要在三维二盐元化膜中进行了研究。在这里,我们解决了一个单层二硫化钼(MOS $ _2 $)的情况,该案例存放在金基板上,并在超洁净的条件下与剖腹产(CS)插入(超高真空)。我们表明,插入量将MOS $ _2 $从其基材中解散。我们揭示了电子从CS到MOS $ _2 $的转移,价带最大值的能量的相对变化以及互嵌小节层中结构障碍引起的电子障碍。此外,我们发现MOS $ _2 $的异常晶格扩展,我们与CS附近有关。插入被热激活,脱位的反向过程也是如此。我们的工作为在几种可能的未来技术中对相关过程的相关过程开辟了途径,并展示了一种通过“覆盖不足”功能来操纵二维二甲构代基的特性的方法。

Intercalation of alkali atoms within the lamellar transition metal dichalcogenides is a possible route toward a new generation of batteries. It is also a way to induce structural phase transitions authorizing the realization of optical and electrical switches in this class of materials. The process of intercalation has been mostly studied in three-dimensional dichalcogenide films. Here, we address the case of a single-layer of molybdenum disulfide (MoS$_2$), deposited on a gold substrate, and intercalated with cesium (Cs) in ultra-clean conditions (ultrahigh vacuum). We show that intercalation decouples MoS$_2$ from its substrate. We reveal electron transfer from Cs to MoS$_2$, relative changes in the energy of the valence band maxima, and electronic disorder induced by structural disorder in the intercalated Cs layer. Besides, we find an abnormal lattice expansion of MoS$_2$, which we relate to immediate vicinity of Cs. Intercalation is thermally activated, and so is the reverse process of de-intercalation. Our work opens the route to a microscopic understanding of a process of relevance in several possible future technologies, and shows a way to manipulate the properties of two-dimensional dichalcogenides by "under-cover" functionalization.

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