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通过纳米级应变工程调谐 ReSe2 的光学、磁学和电学性质。

Tuning the optical, magnetic, and electrical properties of ReSe2 by nanoscale strain engineering.

机构信息

State Key Laboratory of Superlattices and Microstructures, Institute of Semiconductors, Chinese Academy of Sciences , P.O. Box 912, Beijing 100083, China.

出版信息

Nano Lett. 2015 Mar 11;15(3):1660-6. doi: 10.1021/nl504276u. Epub 2015 Feb 3.

Abstract

Creating materials with ultimate control over their physical properties is vital for a wide range of applications. From a traditional materials design perspective, this task often requires precise control over the atomic composition and structure. However, owing to their mechanical properties, low-dimensional layered materials can actually withstand a significant amount of strain and thus sustain elastic deformations before fracture. This, in return, presents a unique technique for tuning their physical properties by "strain engineering". Here, we find that local strain induced on ReSe2, a new member of the transition metal dichalcogenides family, greatly changes its magnetic, optical, and electrical properties. Local strain induced by generation of wrinkle (1) modulates the optical gap as evidenced by red-shifted photoluminescence peak, (2) enhances light emission, (3) induces magnetism, and (4) modulates the electrical properties. The results not only allow us to create materials with vastly different properties at the nanoscale, but also enable a wide range of applications based on 2D materials, including strain sensors, stretchable electrodes, flexible field-effect transistors, artificial-muscle actuators, solar cells, and other spintronic, electromechanical, piezoelectric, photonic devices.

摘要

对材料物理性能进行极致控制对于广泛的应用至关重要。从传统材料设计的角度来看,这项任务通常需要对原子组成和结构进行精确控制。然而,由于其机械性能,低维层状材料实际上可以承受很大的应变,从而在断裂前能够维持弹性变形。这反过来为通过“应变工程”来调整其物理性能提供了一种独特的技术。在这里,我们发现,在过渡金属二卤化物家族的新成员 ReSe2 上产生的局部应变极大地改变了其磁、光和电性能。通过产生褶皱引起的局部应变(1)调制光学带隙,表现为光致发光峰的红移,(2)增强发光,(3)诱导磁性,以及(4)调节电性能。这些结果不仅使我们能够在纳米尺度上创造具有截然不同性能的材料,还为基于二维材料的各种应用提供了可能,包括应变传感器、可拉伸电极、柔性场效应晶体管、人造肌肉致动器、太阳能电池以及其他自旋电子学、机电、压电、光子器件。

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