Hyppää sisältöön
    • Suomeksi
    • In English
  • Suomeksi
  • In English
  • Kirjaudu
Näytä aineisto 
  •   Etusivu
  • 3. UTUCris-artikkelit
  • Rinnakkaistallenteet
  • Näytä aineisto
  •   Etusivu
  • 3. UTUCris-artikkelit
  • Rinnakkaistallenteet
  • Näytä aineisto
JavaScript is disabled for your browser. Some features of this site may not work without it.

Various Configurations of Au@Pt Nanostructures on Modified Electrochemical Sensors for H2O2 Detection

Mostafiz, Bahar; Suni, Johanna; De Jesus Cabrera; Edna; Mathews, Nidhin George; Gogoi, Rituporn; Mohanty, Gaurav; Sharma, Vipul; Peltola, Emilia

Various Configurations of Au@Pt Nanostructures on Modified Electrochemical Sensors for H2O2 Detection

Mostafiz, Bahar
Suni, Johanna
De Jesus Cabrera
Edna
Mathews, Nidhin George
Gogoi, Rituporn
Mohanty, Gaurav
Sharma, Vipul
Peltola, Emilia
Katso/Avaa
mostafiz-et-al-2025-various.pdf (8.169Mb)
Lataukset: 

American Chemical Society (ACS)
doi:10.1021/acsanm.5c03116
URI
https://doi.org/10.1021/acsanm.5c03116
Näytä kaikki kuvailutiedot
Julkaisun pysyvä osoite on:
https://urn.fi/URN:NBN:fi-fe2025082786008
Tiivistelmä

Hydrogen peroxide (H2O2) is a vital metabolite involved in numerous biological processes, with physiological concentrations in humans ranging from 1 to 50 μM. Its rapid production, utilization, and decomposition make accurate low-concentration detection challenging. Although precious metals such as gold and platinum are effective for H2O2 detection, their high cost and limited availability necessitate alternative strategies. Nanostructuring these materials into core–shell nanorods (their size ∼ 40 nm in length) offers a sustainable, efficient solution by reducing material usage while enhancing performance. In this study, we modified glassy carbon electrodes with two types of Au@Pt nanorods (NR) for H2O2’s cyclic voltammetric and chronoamperometric detection: plain-surfaced (Smooth) and appendaged-surfaced (Hairy). Both sensors exhibit rapid stabilization, achieving reliable measurements within 5 s, suitable for capturing the volatile nature of H2O2. The Hairy NRs demonstrate superior performance, attributed to the increased presence of catalytically active Pt(0) compared to the less active Pt(II) in Smooth NRs. This difference in oxidation states, combined with the enhanced surface geometry of Hairy NRs, results in faster kinetics, a wider linear detection range (500 nM–50 μM vs 1–50 μM), lower detection limit (189 nM vs 370 nM), and nearly double sensitivity. To simulate physiological conditions, we assessed oxygen interference and evaluated performance in biologically relevant environments. Cell viability tests were conducted to determine the nanoparticles’ toxicity toward neuroblastic cells. These findings support further development of modified Au@Pt nanorod electrodes for in vivo and in vitro applications. With rapid response times, favorable detection limits, and high sensitivity, these sensors are promising for biomedical diagnostics, environmental monitoring, and studying neurotransmitters like glutamate.

Kokoelmat
  • Rinnakkaistallenteet [27094]

Turun yliopiston kirjasto | Turun yliopisto
julkaisut@utu.fi | Tietosuoja | Saavutettavuusseloste
 

 

Tämä kokoelma

JulkaisuajatTekijätNimekkeetAsiasanatTiedekuntaLaitosOppiaineYhteisöt ja kokoelmat

Omat tiedot

Kirjaudu sisäänRekisteröidy

Turun yliopiston kirjasto | Turun yliopisto
julkaisut@utu.fi | Tietosuoja | Saavutettavuusseloste