直接带隙多层MoS2的空气稳定锂化。

IF 8.3 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Small Science Pub Date : 2025-06-23 eCollection Date: 2025-09-01 DOI:10.1002/smsc.202500186
Qi Fu, Yichi Zhang, Jichuang Shen, Siyuan Hong, Jie Wang, Chen Wang, Jingyi Shen, Wei Kong, Guolin Zheng, Jun Yan, Jie Wu, Changxi Zheng
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引用次数: 0

摘要

由于其具有较大的直接带隙和强的光-物质相互作用,单层二硫化钼的制备引起了人们的广泛关注和广泛的研究。然而,多层二硫化钼由于层间耦合引起的光学非活性间接带隙而被忽视。为了使多层二硫化钼中的每一层都能表现出类似单层的直接间隙行为,对层间耦合进行调制和降低是非常理想的。本文演示了纳米探针控制的基于lixmos2的多层材料的制备,展示了紧密结合的激子和trions的直接带隙和强光致发光发射。新开发的锂离子平台促进了LixMoS2多层材料的制备,该平台具有尖端诱导的Li嵌入,掺杂图案的空间分辨率为517 nm,空气稳定性和可重写性。超低频拉曼表征表明,可控的Li嵌入有效地将多层MoS2转化为多层单层的堆叠,导致与单层相比光致发光增强26倍。该插层结果与现有的二硫化钼多层层转变为金属相的观测结果不同。这项工作不仅为研究锂材料相互作用和开发新型离子电子学提供了一个高度可控的锂离子工程平台,而且为光电子应用提供了一种有趣的直接带隙半导体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Air-Stable Lithiation of MoS<sub>2</sub> for Direct-Bandgap Multilayers.

Air-Stable Lithiation of MoS<sub>2</sub> for Direct-Bandgap Multilayers.

Air-Stable Lithiation of MoS<sub>2</sub> for Direct-Bandgap Multilayers.

Air-Stable Lithiation of MoS2 for Direct-Bandgap Multilayers.

Due to its sizable direct bandgap and strong light-matter interactions, the preparation of monolayer MoS2 has attracted significant attention and intensive research efforts. However, multilayer MoS2 is largely overlooked because of its optically inactive indirect bandgap caused by interlayer coupling. It is highly desirable to modulate and decrease the interlayer coupling so that each layer in multilayer MoS2 can exhibit a monolayer-like direct-gap behavior. Herein, the nanoprobe-controlled fabrication of LixMoS2-based multilayers is demonstrated, exhibiting a direct bandgap and strong photoluminescence emission from tightly bound excitons and trions. The fabrication of LixMoS2 multilayers is facilitated by the newly developed Li-ion platform, featuring tip-induced Li intercalation, doping patterning with a spatial resolution of 517 nm, air stability, and rewritability. Ultralow frequency Raman characterizations reveal that controlled Li intercalation effectively transforms multilayer MoS2 into the stack of multiple monolayers, leading to a 26-fold enhancement of photoluminescence compared to a monolayer. The intercalation result is different from existing observations of transforming MoS2 multilayers into metallic phases. This work not only provides a highly controllable Li-ionic engineering platform for studying Li-material interactions and developing novel ionic electronics but also offers an intriguing direct-bandgap semiconductor for optoelectronic applications.

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来源期刊
CiteScore
14.00
自引率
2.40%
发文量
0
期刊介绍: Small Science is a premium multidisciplinary open access journal dedicated to publishing impactful research from all areas of nanoscience and nanotechnology. It features interdisciplinary original research and focused review articles on relevant topics. The journal covers design, characterization, mechanism, technology, and application of micro-/nanoscale structures and systems in various fields including physics, chemistry, materials science, engineering, environmental science, life science, biology, and medicine. It welcomes innovative interdisciplinary research and its readership includes professionals from academia and industry in fields such as chemistry, physics, materials science, biology, engineering, and environmental and analytical science. Small Science is indexed and abstracted in CAS, DOAJ, Clarivate Analytics, ProQuest Central, Publicly Available Content Database, Science Database, SCOPUS, and Web of Science.
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