Digital Microfluidics for the Detection of Selected Inorganic Ions in Aerosols

A prototype aerosol detection system is presented that is designed to accurately and quickly measure the concentration of selected inorganic ions in the atmosphere. The aerosol detection system combines digital microfluidics technology, aerosol impaction and chemical detection integrated on the same...

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Main Authors: Shuquan Huang, Jessica Connolly, Andrei Khlystov, Richard B. Fair
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/20/5/1281
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spelling doaj-6421c5d3c71440ee9d9c47117bfbe5ab2020-11-25T02:16:11ZengMDPI AGSensors1424-82202020-02-01205128110.3390/s20051281s20051281Digital Microfluidics for the Detection of Selected Inorganic Ions in AerosolsShuquan Huang0Jessica Connolly1Andrei Khlystov2Richard B. Fair3Department of Electrical and Computer Engineering, Duke University, Durham, NC 27708, USADivision of Atmospheric Sciences, Desert Research Institute, Reno, NV 89512, USADivision of Atmospheric Sciences, Desert Research Institute, Reno, NV 89512, USADepartment of Electrical and Computer Engineering, Duke University, Durham, NC 27708, USAA prototype aerosol detection system is presented that is designed to accurately and quickly measure the concentration of selected inorganic ions in the atmosphere. The aerosol detection system combines digital microfluidics technology, aerosol impaction and chemical detection integrated on the same chip. Target compounds are the major inorganic aerosol constituents: sulfate, nitrate and ammonium. The digital microfluidic system consists of top and bottom plates that sandwich a fluid layer. Nozzles for an inertial impactor are built into the top plate according to known, scaling principles. The deposited air particles are densely concentrated in well-defined deposits on the bottom plate containing droplet actuation electrodes of the chip in fixed areas. The aerosol collection efficiency for particles larger than 100 nm in diameter was higher than 95%. After a collection phase, deposits are dissolved into a scanning droplet. Due to a sub-microliter droplet size, the obtained extract is highly concentrated. Droplets then pass through an air/oil interface on chip for colorimetric analysis by spectrophotometry using optical fibers placed between the two plates of the chip. To create a standard curve for each analyte, six different concentrations of liquid standards were chosen for each assay and dispensed from on-chip reservoirs. The droplet mixing was completed in a few seconds and the final droplet was transported to the detection position as soon as the mixing was finished. Limits of detection (LOD) in the final droplet were determined to be 11 ppm for sulfate and 0.26 ppm for ammonium. For nitrate, it was impossible to get stable measurements. The LOD of the on-chip measurements for sulfate was close to that obtained by an off-chip method using a Tecan spectrometer. LOD of the on-chip method for ammonium was about five times larger than what was obtained with the off-chip method. For the current impactor collection air flow (1 L/min) and 1 h collection time, the converted LODs in air were: 0.275 &#956;g/m<sup>3</sup> for sulfate, 6.5 ng/m<sup>3</sup> for ammonium, sufficient for most ambient air monitoring applications.https://www.mdpi.com/1424-8220/20/5/1281digital microfluidicsaerosol impactiondropletssulfate sensingammonium sensing
collection DOAJ
language English
format Article
sources DOAJ
author Shuquan Huang
Jessica Connolly
Andrei Khlystov
Richard B. Fair
spellingShingle Shuquan Huang
Jessica Connolly
Andrei Khlystov
Richard B. Fair
Digital Microfluidics for the Detection of Selected Inorganic Ions in Aerosols
Sensors
digital microfluidics
aerosol impaction
droplets
sulfate sensing
ammonium sensing
author_facet Shuquan Huang
Jessica Connolly
Andrei Khlystov
Richard B. Fair
author_sort Shuquan Huang
title Digital Microfluidics for the Detection of Selected Inorganic Ions in Aerosols
title_short Digital Microfluidics for the Detection of Selected Inorganic Ions in Aerosols
title_full Digital Microfluidics for the Detection of Selected Inorganic Ions in Aerosols
title_fullStr Digital Microfluidics for the Detection of Selected Inorganic Ions in Aerosols
title_full_unstemmed Digital Microfluidics for the Detection of Selected Inorganic Ions in Aerosols
title_sort digital microfluidics for the detection of selected inorganic ions in aerosols
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2020-02-01
description A prototype aerosol detection system is presented that is designed to accurately and quickly measure the concentration of selected inorganic ions in the atmosphere. The aerosol detection system combines digital microfluidics technology, aerosol impaction and chemical detection integrated on the same chip. Target compounds are the major inorganic aerosol constituents: sulfate, nitrate and ammonium. The digital microfluidic system consists of top and bottom plates that sandwich a fluid layer. Nozzles for an inertial impactor are built into the top plate according to known, scaling principles. The deposited air particles are densely concentrated in well-defined deposits on the bottom plate containing droplet actuation electrodes of the chip in fixed areas. The aerosol collection efficiency for particles larger than 100 nm in diameter was higher than 95%. After a collection phase, deposits are dissolved into a scanning droplet. Due to a sub-microliter droplet size, the obtained extract is highly concentrated. Droplets then pass through an air/oil interface on chip for colorimetric analysis by spectrophotometry using optical fibers placed between the two plates of the chip. To create a standard curve for each analyte, six different concentrations of liquid standards were chosen for each assay and dispensed from on-chip reservoirs. The droplet mixing was completed in a few seconds and the final droplet was transported to the detection position as soon as the mixing was finished. Limits of detection (LOD) in the final droplet were determined to be 11 ppm for sulfate and 0.26 ppm for ammonium. For nitrate, it was impossible to get stable measurements. The LOD of the on-chip measurements for sulfate was close to that obtained by an off-chip method using a Tecan spectrometer. LOD of the on-chip method for ammonium was about five times larger than what was obtained with the off-chip method. For the current impactor collection air flow (1 L/min) and 1 h collection time, the converted LODs in air were: 0.275 &#956;g/m<sup>3</sup> for sulfate, 6.5 ng/m<sup>3</sup> for ammonium, sufficient for most ambient air monitoring applications.
topic digital microfluidics
aerosol impaction
droplets
sulfate sensing
ammonium sensing
url https://www.mdpi.com/1424-8220/20/5/1281
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