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拉伸状态下石墨烯膜的应力诱导拉曼增强。

Tension-Induced Raman Enhancement of Graphene Membranes in the Stretched State.

机构信息

State Key Laboratory of Mechanical System and Vibration, School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, China.

State Key Laboratory of Functional Materials for Informatics, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, 865 Changning Road, Shanghai, 200050, China.

出版信息

Small. 2019 Jan;15(2):e1804337. doi: 10.1002/smll.201804337. Epub 2018 Dec 3.

Abstract

The intensity ratio of the 2D band to the G band, I /I , is a good criterion in selecting high quality monolayer graphene samples; however, the evaluation of the ultimate value of I /I for intrinsic monolayer graphene is a challenging yet interesting issue. Here, an interesting tension-induced Raman enhancement phenomenon is reported in supported graphene membranes, which show a transition from the corrugated state to the stretched state in the vicinity of wells. The I /I of substrate-supported graphene membranes near wells are significantly enhanced up to 16.74, which is the highest experimental value to the best of knowledge, increasing by more than 600% when the testing points approach the well edges.The macroscopic origin of this phenomenon is that corrugated graphene membranes are stretched by built-in tensions. A lattice dynamic model is proposed to successfully reveal the microscopic mechanism of this phenomenon. The theoretical results agree well with the experimental data, demonstrating that tensile stresses can depress the amplitude of in-plane vibration of sp -bonded carbon atoms and result in the decrease in the G band intensity. This work can be helpful in furthering the development of the method of suppressing small ripples in graphene and acquiring ultraflat 2D materials.

摘要

2D 带与 G 带的强度比,I/I,是选择高质量单层石墨烯样品的一个很好的标准;然而,评估本征单层石墨烯的 I/I 的极限值是一个具有挑战性但又很有趣的问题。在这里,我们在支撑的石墨烯膜中报告了一个有趣的拉伸诱导 Raman 增强现象,它显示了在附近的势阱中从波纹状态到拉伸状态的转变。在势阱附近的基底支撑石墨烯膜的 I/I 显著增强,高达 16.74,这是目前为止实验中得到的最高值,当测试点接近势阱边缘时,其增强超过 600%。这种现象的宏观起源是,波纹石墨烯膜受到内置张力的拉伸。提出了一个晶格动力学模型来成功揭示这种现象的微观机制。理论结果与实验数据吻合良好,表明拉伸应力可以抑制 sp 键合碳原子的平面内振动幅度,并导致 G 带强度的降低。这项工作有助于进一步发展抑制石墨烯中微小波纹的方法和获得超平整的 2D 材料。

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