Cui Ennan, Liu Heyuan, Wang Zhuan, Chen Hailong, Weng Yu-Xiang
The Laboratory of Soft Matter Physics, Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
School of Physical Science, University of the Chinese Academy of Sciences, Beijing 100049, China.
Rev Sci Instrum. 2024 Mar 1;95(3). doi: 10.1063/5.0197254.
Parametric superfluorescence (PSF), which originated from the optical amplification of vacuum quantum noise, is the primary noise source of femtosecond fluorescence non-collinear optical parametric amplification spectroscopy (FNOPAS). It severely affects the detection limit of FNOPAS to collect the femtosecond time-resolved spectra of extremely weak fluorescence. Here, we report the development of femtosecond fluorescence conical optical parametric amplification spectroscopy (FCOPAS), aimed at effectively suppressing the noise fluctuation from the PSF background. In contrast to traditional FNOPAS configurations utilizing lateral fluorescence collection and dot-like parametric amplification, FCOPAS employs an innovative conical fluorescence collection and ring-like amplification setup. This design enables effective cancellation of noise fluctuation across the entire PSF ring, resulting in an approximate order of magnitude reduction in PSF noise compared to prior FNOPAS outcomes. This advancement enables the resolution of transient fluorescence spectra of 4-dicyanomethylene-2-methyl-6-p-dimethylaminostyryl-4H-pyran (DCM) dye molecules in ethanol, even at an optically dilute concentration of 10-6 mol/l, with significantly enhanced signal-to-noise ratios. This improvement will be significant for extremely weak fluorescence detection on the femtosecond time scale.
参量超荧光(PSF)源于真空量子噪声的光学放大,是飞秒荧光非共线光学参量放大光谱(FNOPAS)的主要噪声源。它严重影响FNOPAS收集极弱荧光的飞秒时间分辨光谱的检测极限。在此,我们报道了飞秒荧光锥形光学参量放大光谱(FCOPAS)的进展,旨在有效抑制来自PSF背景的噪声波动。与利用横向荧光收集和点状参量放大的传统FNOPAS配置不同,FCOPAS采用了创新的锥形荧光收集和环状放大设置。这种设计能够有效消除整个PSF环上的噪声波动,与之前的FNOPAS结果相比,PSF噪声降低了约一个数量级。这一进展使得即使在乙醇中光学稀释浓度为10-6 mol/l的情况下,也能够分辨4-二氰基亚甲基-2-甲基-6-对二甲氨基苯乙烯基-4H-吡喃(DCM)染料分子的瞬态荧光光谱,且信噪比显著提高。这一改进对于飞秒时间尺度上的极弱荧光检测具有重要意义。