巨大的和可控制的谷流在石墨烯通过双的THz光
Sangeeta Sharma1,2, Deepika Gill1, Samuel Shallcross1
1Max-Born-Institute for Non-linear Optics and Short Pulse Spectroscopy, Max-Born Strasse 2A, 12489 Berlin, Germany.
Nano letters
|November 13, 2023
概括
研究人员展示了THz波形,可以控制石墨烯中的谷流,在没有电荷激发的情况下实现高谷纯度. 这一突破推动了谷电子学和超快光控制在石墨烯和拓绝缘体等材料中的进步.
科学领域:
- 固态物理 固态物理
- 凝聚物质物理学 凝聚物质物理学
- 材料科学是一种材料科学.
背景情况:
- 谷歌电子公司的目标是使用电荷激发来控制电荷激发.
- 美国的山谷州.
- 由晶体运动量定义的.
- 至少有间隙的材料,如石墨烯,是关键的平台.
研究的目的:
- 为了研究光诱导的谷流在最小间隙的石墨烯.
- 通过使用定制的THz波形来演示对山谷状态的超快控制.
主要方法:
- 利用"脉冲条纹"THz波形来激发和操纵电荷载体.
- 采用最小间隙的石墨烯 (≤40 meV) 作为材料系统.
- 分析了当前状态的山谷纯度结果.
主要成果:
- 使用光线实现高谷纯度 (高达~80%).
- 证明了没有谷对比电荷激发的谷对比电流状态.
- 展示了THz波形对动量空间人口的控制.
结论:
- 最少的间隙石墨烯是valleytronics的一个可行的平台.
- 定制的THz光线提供了对山谷电流的超快速控制.
- 该方法适用于各种有间隙的材料,包括拓绝缘体.
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