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Complex Refractive Indices of Aerosols Retrieved by Continuous Wave-Cavity Ring Down Aerosol Spectrometer

机译:连续波腔衰荡式气溶胶光谱仪获取的气溶胶复合折射率

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The major uncertainties associated with the direct impact of aerosols on climate call for fast and accurate characterization of their optical properties. Cavity ring down (CRD) spectroscopy provides highly sensitive measurement of aerosols' extinction coefficients from which the complex refractive index (RI) of the aerosol may be retrieved accurately for spherical particles of known size and number density, thus it is possible to calculate the single scattering albedo and other atmospherically relevant optical parameters. We present a CRD system employing continuous wave (CW) single mode laser. The single mode laser and the high repetition rate obtained significantly improve the sensitivity and reliability of the system, compared to a pulsed laser CRD setup. The detection limit of the CW-CRD system is between 6.67 X 10~(-10) cm~(-1) for an empty cavity and 3.63 X 10~(-9) cm~(-1) for 1000 particles per cm~(3) inside the cavity, at a 400 Hz sampling and averaging of 2000 shots for one sample measurement taken in 5 s. For typical pulsed-CRD, the detection limit for an empty cavity is less than 3.8 X 10~(-9) cm~(-1) for 1000 shots averaged over 100 s at 10 Hz. The system was tested for stability, accuracy, and RI retrievals for scattering and absorbing laboratory-generated aerosols. Specifically, the retrieved extinction remains very stable for long measurement times (1 h) with an order of magnitude change in aerosol number concentration. In addition, the optical cross section ((sigma)_(ext)) of a 400 nm polystyrene latex sphere (PSL) was determined within 2percent error compared to the calculated value based on Mie theory. The complex RI of PSL, nigrosin, and ammonium sulfate (AS) aerosols were determined by measuring the extinction efficiency (Q_(ext)) as a function of the size parameter (((pi)D)/lambda) and found to be in very good agreement with literature values. A mismatch in the retrieved RI of Suwannee River fulvic acid (SRFA) compared to a previous study was observed and is attributed to variation in the sample composition. The small system presented delivers high ability for fast measurements and accurate analysis, making it a good candidate for field aerosol optical properties studies.
机译:与气溶胶对气候的直接影响有关的主要不确定性要求对其光学特性进行快速准确的表征。腔衰荡(CRD)光谱法可对气溶胶的消光系数进行高度灵敏的测量,对于已知尺寸和数密度的球形颗粒,可从中精确获取气溶胶的复折射率(RI),因此可以计算单个散射反照率和其他与大气有关的光学参数。我们提出了采用连续波(CW)单模激光器的CRD系统。与脉冲激光器CRD设置相比,单模激光器和获得的高重复率显着提高了系统的灵敏度和可靠性。 CW-CRD系统的检出限在空腔内为6.67 X 10〜(-10)cm〜(-1),对于每厘米1000个粒子为3.63 X 10〜(-9)cm〜(-1)。 (3)在腔体内,以400 Hz采样并平均5 s内进行2000次采样的平均值。对于典型的脉冲CRD,在10 Hz的100 s内平均进行1000次发射时,空腔的检测极限小于3.8 X 10〜(-9)cm〜(-1)。对系统进行了稳定性,准确性和RI取回测试,以散射和吸收实验室产生的气溶胶。具体而言,在较长的测量时间(1小时)内,恢复的消光保持非常稳定,且气溶胶数浓度变化了一个数量级。另外,与基于米氏理论的计算值相比,测定了400nm的聚苯乙烯乳胶球(PSL)的光学截面(σ_ext),误差在2%以内。通过测量消光效率(Q_(ext))作为尺寸参数((piD)/λ的函数),可以确定PSL,尼古丁胶和硫酸铵(AS)气溶胶的复合RI。与文学价值观非常吻合。与先前的研究相比,在Suwannee河黄腐酸(SRFA)的检索到的RI中发现不匹配,并且归因于样品组成的变化。所展示的小型系统具有快速测量和准确分析的高性能,使其成为现场气溶胶光学特性研究的理想之选。

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