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使用图案化量子传感器的柔性平台进行微观分辨率热映射。

Microscale-Resolution Thermal Mapping Using a Flexible Platform of Patterned Quantum Sensors.

机构信息

Institute for Molecular Engineering , University of Chicago , Chicago , Illinois 60637 , United States.

Institute for Molecular Engineering and Materials Science Division , Argonne National Lab , Argonne , Illinois 60439 , United States.

出版信息

Nano Lett. 2018 Aug 8;18(8):4684-4690. doi: 10.1021/acs.nanolett.8b00895. Epub 2018 Jul 24.

Abstract

Temperature sensors with micro- and nanoscale spatial resolution have long been explored for their potential to investigate the details of physical systems at an unprecedented scale. In particular, the rapid miniaturization of transistor technology, with its associated steep boost in power density, calls for sensors that accurately monitor heating distributions. Here, we report on a simple and scalable fabrication approach, based on directed self-assembly and transfer-printing techniques, to constructing arrays of nanodiamonds containing temperature-sensitive fluorescent spin defects. The nanoparticles are embedded within a low-thermal-conductivity matrix that allows for repeated use on a wide range of systems with minimal spurious effects. Additionally, we demonstrate access to a wide spectrum of array parameters ranging from sparser single-particle arrays, with the potential for quantum computing applications, to denser devices with 98 ± 0.8% yield and stronger photoluminescence signals, ideal for temperature measurements. With these, we experimentally reconstruct the temperature map of an operating coplanar waveguide to confirm the accuracy of these platforms.

摘要

具有微纳尺度空间分辨率的温度传感器,因其具有在前所未有的尺度上研究物理系统细节的潜力而被长期探索。特别是,晶体管技术的快速小型化及其相关的功率密度急剧提升,需要能够精确监测加热分布的传感器。在这里,我们报告了一种简单且可扩展的制造方法,该方法基于定向自组装和转印技术,构建了含有温度敏感荧光自旋缺陷的纳米金刚石阵列。这些纳米颗粒嵌入在低热导率的基质中,可在广泛的系统上重复使用,且几乎没有杂散效应。此外,我们展示了对一系列阵列参数的广泛访问,从具有潜在量子计算应用的稀疏单粒子阵列,到具有 98 ± 0.8%产量和更强荧光信号的更密集器件,非常适合温度测量。通过这些方法,我们实验重建了工作共面波导的温度图,以确认这些平台的准确性。

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