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Electrochemical ozone sensors : A miniaturised alternative for ozone measurements in laboratory experiments and air-quality monitoring

机译:电化学臭氧传感器:用于实验室实验和空气质量监测中臭氧测量的小型化替代品

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摘要

Ozone (O3) measurements are a critical component of air quality management and many atmospheric chemistry laboratory experiments. Conventional ozone monitoring devices based on UV absorption are relatively cumbersome and expensive, and have a relative high power consumption that limits their use to fixed sites. In this study electrochemical O3 sensors (OXB421, Alphasense) were used in a miniaturised O3 measurement device combined with LabJack and Labview data acquisition (DAQ). The device required a power supply of 5 V direct current (VDC) with a total power consumption of approximately 5 W. Total weight was less than 0.5 kg, low enough for portable in situ field deployment. The electrochemical O3 sensors produced a voltage signal positively proportional to O3 concentrations over the range of 5 ppb–10 ppm. There was excellent agreement between the performances of two O3 sensors with a good linear coefficient (R2 = 0.9995). The influences of relative humidity (RH) and gas sample flow rate on sensor calibrations and sensitivities have been investigated separately. Coincident calibration curves indicate that sensor performances were almost identical even at different RHs and flow rates after a re-zeroing process to offset the sensor baseline drifts. Rapid RH changes (∼20%/min) generate significant and instant changes in sensor signal, and the sensors consistently take up to 40 min to recover their original values after such a rapid RH change. In contrast, slow RH changes (∼0.1%/min) had little effect on sensor response. To test the performance of the miniaturised O3 device for real-world applications, the O3 sensors were employed for (i) laboratory experiments to measure O3 loss by seawater uptake and (ii) air quality monitoring over an 18-day period. It was found that ozone uptake by seawater was linear to the volume of linoleic acid on a sea surface microlayer and the calculated uptake coefficients based on sensor measurements were close to those from previous studies. For the 18-day period of air quality monitoring the corrected data from the O3 sensor was in a good agreement with those obtained by reference UV O3 analyser with an r2 of 0.83 (n = 8502). The novelty of this study is that the electrochemical O3 sensor was comprehensively investigated in O3 measurements in both laboratory and ambient air quality monitoring and it can to be a miniaturised alternative for conventional O3 monitoring devices due to its low cost, low power-consumption, portable and simple-conduction properties.
机译:臭氧(O3)测量是空气质量管理和许多大气化学实验室实验的重要组成部分。基于紫外线吸收的常规臭氧监测装置相对笨重且昂贵,并且具有相对较高的功耗,从而限制了其在固定场所的使用。在这项研究中,将电化学O3传感器(OXB421,Alphasense)用于与LabJack和Labview数据采集(DAQ)相结合的小型O3测量设备中。该设备需要5V直流电源(VDC)供电,总功耗约为5W。总重量小于0.5公斤,对于便携式现场部署来说足够低。电化学O3传感器产生的电压信号与O3浓度成正比,范围为5 ppb–10 ppm。两个具有良好线性系数(R2 = 0.9995)的O3传感器的性能之间有着极好的一致性。相对湿度(RH)和气体样品流速对传感器校准和灵敏度的影响已分别进行了研究。一致的校准曲线表明,即使在不同的相对湿度和流速下,经过重新调零过程以抵消传感器基线漂移后,传感器的性能也几乎相同。相对湿度快速变化(〜20%/ min)会立即显着改变传感器信号,并且在如此快速的相对湿度变化后,传感器始终需要长达40分钟的时间才能恢复其原始值。相反,缓慢的RH变化(〜0.1%/ min)对传感器响应影响很小。为了测试微型O3设备在实际应用中的性能,O3传感器被用于(i)实验室实验,以测量海水吸收引起的O3损失,以及(ii)在18天的时间内进行空气质量监测。发现海水对臭氧的吸收与海面微层上亚油酸的体积成线性关系,并且基于传感器测量值计算出的吸收系数与之前的研究相近。在为期18天的空气质量监测中,来自O3传感器的校正数据与参考UV O3分析仪获得的数据具有很好的一致性,r2为0.83(n = 8502)。这项研究的新颖之处在于,电化学O3传感器已在实验室和环境空气质量监测中的O3测量中进行了全面研究,并且由于其低成本,低功耗,便携式等特点,可以作为常规O3监测设备的小型替代品。和简单的传导特性。

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