Feng Zheng, Tan Wei, Jin Zuanming, Chen Yi-Jia, Zhong Zhangfeng, Zhang Liang, Sun Song, Tang Jin, Jiang Yexing, Wu Po-Hsun, Cheng Jun, Miao Bingfeng, Ding Haifeng, Wang Dacheng, Zhu Yiming, Guo Liang, Shin Sunmi, Ma Guo-Hong, Hou Dazhi, Huang Ssu-Yen
Microsystem & Terahertz Research Center, CAEP, Chengdu 610200, P. R. China.
Terahertz Technology Innovation Research Institute, Terahertz Spectrum and Imaging Technology Cooperative Innovation Center, Shanghai Key Lab of Modern Optical System, University of Shanghai for Science and Technology, Shanghai 200093, P. R. China.
Nano Lett. 2023 Sep 13;23(17):8171-8179. doi: 10.1021/acs.nanolett.3c02320. Epub 2023 Aug 28.
Despite its important role in understanding ultrafast spin dynamics and revealing novel spin/orbit effects, the mechanism of the terahertz (THz) emission from a single ferromagnetic nanofilm upon a femtosecond laser pump still remains elusive. Recent experiments have shown exotic symmetry, which is not expected from the routinely adopted mechanism of ultrafast demagnetization. Here, by developing a bidirectional pump-THz emission spectroscopy and associated symmetry analysis method, we set a benchmark for the experimental distinction of the THz emission induced by various mechanisms. Our results unambiguously unveil a new mechanism─anomalous Nernst effect (ANE) induced THz emission due to the ultrafast temperature gradient created by a femtosecond laser. Quantitative analysis shows that the THz emission exhibits interesting thickness dependence where different mechanisms dominate at different thickness ranges. Our work not only clarifies the origin of the ferromagnetic-based THz emission but also offers a fertile platform for investigating the ultrafast optomagnetism and THz spintronics.
尽管太赫兹(THz)发射在理解超快自旋动力学和揭示新型自旋/轨道效应方面具有重要作用,但在飞秒激光泵浦下,单个铁磁纳米薄膜产生太赫兹发射的机制仍不清楚。最近的实验显示出奇特的对称性,这是常规采用的超快退磁机制所无法预期的。在此,通过开发一种双向泵浦-太赫兹发射光谱学及相关对称性分析方法,我们为区分各种机制诱导的太赫兹发射设定了实验基准。我们的结果明确揭示了一种新机制——由于飞秒激光产生的超快温度梯度导致反常能斯特效应(ANE)诱导的太赫兹发射。定量分析表明,太赫兹发射呈现出有趣的厚度依赖性,不同机制在不同厚度范围内占主导。我们的工作不仅阐明了基于铁磁的太赫兹发射的起源,还为研究超快光磁学和太赫兹自旋电子学提供了一个丰富的平台。