Nature of the Synergistic Effect of N and S Co-Doped Graphene for the Enhanced Simultaneous Determination of Toxic Pollutants.
Weiqing ZhuJuanjuan GaoHaiou SongXuezhen LinShupeng ZhangPublished in: ACS applied materials & interfaces (2019)
N-doped graphene (NG), S-doped graphene (SG), and N and S co-doped graphene nanocatalysts with different doping sequences (N-SG and S-NG) are successfully synthesized by a facile low-temperature hydrothermal method. By changing the synthetic sequence, S-NG significantly increases the electron transport rate of the sensor and the electrocatalytic ability compared to NG, SG, and N-SG due to the optimal proportion of doping element content and suitable N- and S-bonding configurations. The origin of the synergistic effect of N and S co-doped graphene is confirmed. Traces of S doping greatly enhance the electrochemical performance. The large volume of S-Ox groups may prevent the analytes from approaching the catalytic sites of the sensing materials due to a steric hindrance effect. S-NG, which possesses less S-Ox groups, exhibits better performance than N-SG. Pyridinic N plays an important role in enhancing the electrochemical activity and conductivity. The simultaneous determination of aniline (AN), p-phenylenediamine (PPD), and nitrobenzene (NB) as typical toxic pollutants is performed by employing the S-NG nanoarchitecture. The detection limits (S/N = 3) for AN, PPD, and NB are 0.023, 0.051, and 0.216 μM, respectively. In addition, the S-NG sensors also have excellent anti-interference, stability, and reproducibility. The precise control and synthesis of multiheteroatoms into graphene represent a promising strategy to enhance the electrocatalytic performance in energy and environmental fields.
Keyphrases
- simultaneous determination
- quantum dots
- metal organic framework
- highly efficient
- liquid chromatography tandem mass spectrometry
- room temperature
- carbon nanotubes
- tandem mass spectrometry
- high performance liquid chromatography
- visible light
- walled carbon nanotubes
- ultra high performance liquid chromatography
- gold nanoparticles
- ionic liquid
- liquid chromatography
- label free
- solid phase extraction
- heavy metals
- reduced graphene oxide
- mass spectrometry
- high resolution
- ms ms
- transition metal
- amino acid
- crystal structure
- municipal solid waste
- low cost