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Ultrasensitive Picomolar Detection of Aqueous Acids in Microscale Fluorescent Droplets

  • Hui Wang
  • , Zixiang Wei
  • , Sergei I. Vagin
  • , Xuehua Zhang
  • , Bernhard Rieger
  • , Alkiviathes Meldrum
  • University of Alberta
  • Technical University of Munich

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

We report on a fluorescent-droplet-based acid-sensing scheme that allows limits of detection below 100 pM for weak acids. The concept is based on a strong partitioning of acid from an aqueous phase into octanol droplets. Using salicylic acid as a demonstration, we show that at a high concentration, the acid partitions into the organic phase by a factor of 260, which is approximately consistent with literature values. However, at lower concentrations, we obtain a partition coefficient as high as 106, which is partly responsible for the excellent sensing performance. The enhanced equilibrium partitioning is likely due to the interaction of the dissociated acid phase with the sensor dye employed for this work. The effect of droplet size was determined, after which we derived a simple model to predict the time dependence of the color change as a function of droplet size. This work shows that color-change fluorescent-droplet-based detection is a promising avenue that can lead to exceptional sensing performance from an aqueous analyte.

Original languageEnglish
Pages (from-to)245-252
Number of pages8
JournalACS Sensors
Volume7
Issue number1
DOIs
StatePublished - 28 Jan 2022

Keywords

  • acid
  • droplets
  • fluorescence
  • octanol
  • partition
  • water

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