材料科学
稀释冰箱
鱿鱼
磁力显微镜
显微镜
扫描SQUID显微镜
扫描霍尔探针显微镜
扫描探针显微镜
超顺磁性
扫描电子显微镜
光电子学
低温冷却器
光学
磁化
磁强计
磁场
扫描透射电子显微镜
常规透射电子显微镜
冷藏车
复合材料
物理
热力学
生物
量子力学
生态学
梯度计
作者
Haibiao Zhou,Nadav Auerbach,Indranil Roy,Matan Bocarsly,M. E. Huber,Barun Barick,Arnab Pariari,M. Hücker,Zhi Shiuh Lim,Ariando Ariando,Alexey I. Berdyugin,Na Xin,M. L. Rappaport,Y. Myasoedov,E. Zeldov
摘要
The scanning superconducting quantum interference device (SQUID) fabricated on the tip of a sharp quartz pipette (SQUID-on-tip) has emerged as a versatile tool for the nanoscale imaging of magnetic, thermal, and transport properties of microscopic devices of quantum materials. We present the design and performance of a scanning SQUID-on-tip microscope in a top-loading probe of a cryogen-free dilution refrigerator. The microscope is enclosed in a custom-made vacuum-tight cell mounted at the bottom of the probe and is suspended by springs to suppress vibrations caused by the pulse tube cryocooler. Two capillaries allow for the in situ control of helium exchange gas pressure in the cell that is required for thermal imaging. A nanoscale heater is used to create local temperature gradients in the sample, which enables quantitative characterization of relative vibrations between the tip and the sample. The spectrum of the vibrations shows distinct resonant peaks with a maximal power density of about 27 nm/Hz1/2 in the in-plane direction. The performance of the SQUID-on-tip microscope is demonstrated by magnetic imaging of the MnBi2Te4 magnetic topological insulator, magnetization and current distribution imaging in a SrRuO3 ferromagnetic oxide thin film, and thermal imaging of dissipation in graphene.
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