Hydrazine High-Performance Oxidation and Sensing Using a Copper Oxide Nanosheet Electrocatalyst Prepared via a Foam-Surfactant Dual Template.
Etab M AlmutairiMohamed A GhanemAbdulrahman Al-WarthanMufsir KuniyilSyed Farooq AdilPublished in: Nanomaterials (Basel, Switzerland) (2022)
This work demonstrates hydrazine electro-oxidation and sensing using an ultrathin copper oxide nanosheet (CuO-NS) architecture prepared via a versatile foam-surfactant dual template (FSDT) approach. CuO-NS was synthesised by chemical deposition of the hexagonal surfactant Brij ® 58 liquid crystal template containing dissolved copper ions using hydrogen foam that was concurrently generated by a sodium borohydride reducing agent. The physical characterisations of the CuO-NS showed the formation of a two-dimensional (2D) ultrathin nanosheet architecture of crystalline CuO with a specific surface area of ~39 m 2 /g. The electrochemical CuO-NS oxidation and sensing performance for hydrazine oxidation revealed that the CuO nanosheets had a superior oxidation performance compared with bare -CuO, and the reported state-of-the-art catalysts had a high hydrazine sensitivity of 1.47 mA/cm 2 mM, a low detection limit of 15 μM (S/N = 3), and a linear concentration range of up to 45 mM. Moreover, CuO-NS shows considerable potential for the practical use of hydrazine detection in tap and bottled water samples with a good recovery achieved. Furthermore, the foam-surfactant dual template (FSDT) one-pot synthesis approach could be used to produce a wide range of nanomaterials with various compositions and nanoarchitectures at ambient conditions for boosting the electrochemical catalytic reactions.
Keyphrases
- molecularly imprinted
- fluorescent probe
- dengue virus
- hydrogen peroxide
- label free
- electron transfer
- metal organic framework
- gold nanoparticles
- physical activity
- air pollution
- quantum dots
- oxide nanoparticles
- mental health
- nitric oxide
- particulate matter
- ionic liquid
- single cell
- high resolution
- risk assessment
- mass spectrometry
- solid phase extraction
- high speed
- aqueous solution