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Solid-State Fluorescence-based Sensing of TATP via Hydrogen Peroxide Detection.

Shengqiang FanJonathan LaiPaul L BurnPaul E Shaw
Published in: ACS sensors (2019)
Fluorenylboronate ester chromophore-based thin films were investigated for the detection of triacetone triperoxide (TATP) vapors via the decomposition product, hydrogen peroxide. Sensing with a high level of sensitivity was achieved using a fluorescence "turn-on" mechanism based on the significant shifts in the absorption and photoluminescence spectra that occurs when the boronate esters were converted to phenoxides by hydrogen peroxide under basic conditions. The addition of an organic base was found to be critical for achieving fast conversion reactions and the formation of the phenoxide anions. Addition of a nitrile group to the fluorenyl boronate ester moiety improved the stability of the material to photooxidation, increased the photoluminescence quantum yields, and enhanced the absorption and emission shifts to longer wavelengths. In real-time sensing measurements, films comprising the cyanofluorenyl boronate ester moiety and tetra- n-butylammonium hydroxide had a response time to acid-decomposed TATP vapor of seconds and a limit of detection of 40 ppb in 60 s.
Keyphrases
  • hydrogen peroxide
  • nitric oxide
  • energy transfer
  • solid state
  • loop mediated isothermal amplification
  • quantum dots
  • real time pcr
  • label free
  • single molecule
  • sensitive detection
  • density functional theory
  • living cells