纳米
纳米尺度
温度测量
材料科学
大气温度范围
钻石
纳米技术
图像分辨率
分辨率(逻辑)
纳米线
光电子学
光学
物理
人工智能
计算机科学
气象学
复合材料
量子力学
作者
Philipp Neumann,Ingmar Jakobi,Florian Dolde,Christian Burk,R. Reuter,G. Waldherr,Jan Honert,Thomas Wolf,Andreas Brunner,Jeong Hyun Shim,Dieter Suter,Hitoshi Sumiya,Junichi Isoya,Jörg Wrachtrup
出处
期刊:Nano Letters
[American Chemical Society]
日期:2013-05-30
卷期号:13 (6): 2738-2742
被引量:795
摘要
Measuring local temperature with a spatial resolution on the order of a few nanometers has a wide range of applications in the semiconductor industry and in material and life sciences. For example, probing temperature on the nanoscale with high precision can potentially be used to detect small, local temperature changes like those caused by chemical reactions or biochemical processes. However, precise nanoscale temperature measurements have not been realized so far owing to the lack of adequate probes. Here we experimentally demonstrate a novel nanoscale temperature sensing technique based on optically detected electron spin resonance in single atomic defects in diamonds. These diamond sensor sizes range from a micrometer down to a few tens of nanometers. We achieve a temperature noise floor of 5 mK/Hz(1/2) for single defects in bulk sensors. Using doped nanodiamonds as sensors the temperature noise floor is 130 mK/Hz(1/2) and accuracies down to 1 mK for nanocrystal sizes and therefore length scales of a few tens of nanometers. This combination of precision and position resolution, combined with the outstanding sensor photostability, should allow the measurement of the heat produced by chemical interactions involving a few or single molecules even in heterogeneous environments like cells.
科研通智能强力驱动
Strongly Powered by AbleSci AI