论文标题

低温磁性磁盘扫描近场光学显微镜(CM-SNOM)

Cryogenic Magneto-Terahertz Scanning Near-field Optical Microscope (cm-SNOM)

论文作者

Kim, Richard H. J., Park, Joong-Mok, Haeuser, Samuel J., Luo, Liang, Wang, Jigang

论文摘要

我们已经开发了一个多功能的近场显微镜平台,该平台可以在高磁场和低于液体温度以下。我们使用此平台来展示极端的Terahertz(THZ)纳米镜操作,并在低至1.8 K的温度下获得第一个低温磁磁性时间域纳米光谱/成像,并同时获得5吨的磁场。我们的低温磁磁 - THZ扫描近场光学显微镜或CM-SNOM仪器包括三个主要设备:i)5 t拆分对磁性低温恒温器,带有定制的插入件,用于在内部安装SNOM; ii)接受超快THZ激发和iii)的原子力显微镜(AFM)单元)MHz重复速率,用于高视野Thz脉冲产生和敏感检测的femtsecond Laser放大器。我们应用CM-SNOM来获得超导和拓扑材料的原理测量证明。新的功能显示了研究量子材料的断开场地,这些量子材料需要在纳米空间,飞秒时间和Terahertz能量尺度上同时使用低温操作和磁场的极端环境。

We have developed a versatile near-field microscopy platform that can operate at high magnetic fields and below liquid-helium temperatures. We use this platform to demonstrate an extreme terahertz (THz) nanoscope operation and to obtain the first cryogenic magneto-THz time-domain nano-spectroscopy/imaging at temperatures as low as 1.8 K and magnetic fields of up to 5 T simultaneously. Our cryogenic magneto-THz scanning near-field optical microscopy, or cm-SNOM, instrument comprises three main equipment: i) a 5 T split pair magnetic cryostat with a custom made insert for mounting SNOM inside; ii) an atomic force microscope (AFM) unit that accepts ultrafast THz excitation and iii) a MHz repetition rate, femtosecond laser amplifier for high-field THz pulse generation and sensitive detection. We apply the cm-SNOM to obtain proof of principle measurements of superconducting and topological materials. The new capabilities demonstrated break grounds for studying quantum materials that requires extreme environment of cryogenic operation and applied magnetic fields simultaneously in nanometer space, femtosecond time, and terahertz energy scales.

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