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Wideband fluorescence-based thermometry by neural network recognition: Photothermal application with 10 ns time resolution

机译:通过神经网络识别的基于宽带荧光的测温法:10 ns时间分辨率的光热应用

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摘要

Neural network recognition of features of the fluorescence spectrum of a thermosensitive probe is exploited in order to achieve fluorescence-based thermometry with an accuracy of 200 mK with 100 MHz bandwidth, and with high robustness against fluctuations of the probe laser intensity used. The concept is implemented on a rhodamine B dyed mixture of copper chloride and glycerol, and the temperature dependent fluorescence is investigated in the temperature range between 234 K and 311 K. The spatial dependence of the calibrated amplitude and phase of photothermally induced temperature oscillations along the axis of the excitation laser are determined at different modulation frequencies. The spatial and frequency dependence of the extracted temperature signals is well fitted by a 1D multi-layer thermal diffusion model. In a time domain implementation of the approach, the gradual temperature rise due to the accumulation of the DC component of the heat flux supplied by repetitive laser pulses as well the immediate transient temperature evolution after each single pulse is extracted from acquired temporal sequences of fluorescence spectra induced by a CW green laser. A stroboscopic implementation of fluorescence thermometry, using a pulsed fluorescence evoking probe laser, is shown to achieve remote detection of temperature changes with a time resolution of 10 ns.
机译:利用神经网络对热敏探针的荧光光谱特征进行识别,以实现基于荧光的测温法,其精度为200 mK,带宽为100 MHz,并且对所使用的探针激光强度的波动具有很高的鲁棒性。该概念在罗丹明B染色的氯化铜和甘油的混合物上实施,并且在234 K至311 K的温度范围内研究了随温度变化的荧光。光热引起的温度振荡的校准幅度和相位在空间上的空间依赖性。在不同的调制频率下确定激发激光的轴。一维多层热扩散模型很好地拟合了所提取温度信号的空间和频率依赖性。在该方法的时域实现中,由于重复的激光脉冲提供的热通量的直流分量的积累,以及从获取的荧光光谱的时间序列中提取每个单个脉冲后的瞬时瞬时温度演变,温度会逐渐升高由连续绿激光产生的。使用脉冲荧光激发探针激光的频闪荧光测温法实现了以10 ns的时间分辨率实现温度变化的远程检测。

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  • 来源
    《Journal of Applied Physics》 |2015年第18期|184906.1-184906.12|共12页
  • 作者单位

    Laboratory for Soft Matter and Biophysics, Department of Physics and Astronomy, KU Leuven, Celestijnenlaan 200D, Heverlee B-3001, Belgium;

    Molecular Imaging and Photonics, Department of Chemistry, KU Leuven, Celestijnenlaan 200F-box 2404, Heverlee 3001, Belgium;

    Laboratory for Soft Matter and Biophysics, Department of Physics and Astronomy, KU Leuven, Celestijnenlaan 200D, Heverlee B-3001, Belgium ,Multiscale Thermal-Physics Lab, Department of Mechanical and Aerospace Engineering, Utah State University, 4130 Old Main Hill, Logan, Utah 84322, USA;

    Laboratory for Soft Matter and Biophysics, Department of Physics and Astronomy, KU Leuven, Celestijnenlaan 200D, Heverlee B-3001, Belgium;

    Aix-Marseille University, IUT de Provence, Paris 75018, France;

    Laboratory for Soft Matter and Biophysics, Department of Physics and Astronomy, KU Leuven, Celestijnenlaan 200D, Heverlee B-3001, Belgium;

    Molecular Imaging and Photonics, Department of Chemistry, KU Leuven, Celestijnenlaan 200F-box 2404, Heverlee 3001, Belgium;

    Multiscale Thermal-Physics Lab, Department of Mechanical and Aerospace Engineering, Utah State University, 4130 Old Main Hill, Logan, Utah 84322, USA;

    Molecular Imaging and Photonics, Department of Chemistry, KU Leuven, Celestijnenlaan 200F-box 2404, Heverlee 3001, Belgium;

    Laboratory for Soft Matter and Biophysics, Department of Physics and Astronomy, KU Leuven, Celestijnenlaan 200D, Heverlee B-3001, Belgium;

    Department of Applied Physics, Graduate School of Engineering, Hokkaido University, Sapporo 060-8628, Japan;

    Laboratory for Soft Matter and Biophysics, Department of Physics and Astronomy, KU Leuven, Celestijnenlaan 200D, Heverlee B-3001, Belgium;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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