TY - JOUR
T1 - One-step production of Pt–CeO2/N-CNTs electrocatalysts with high catalytic performance toward methanol oxidation
AU - Yu, Yunqi
AU - He, Jianting
AU - Wang, Tong
AU - Qiu, Xinsheng
AU - Chen, Kangcheng
AU - Wu, Qin
AU - Shi, Daxin
AU - Zhang, Yaoyuan
AU - Li, Hansheng
N1 - Publisher Copyright:
© 2023 Hydrogen Energy Publications LLC
PY - 2023/9/5
Y1 - 2023/9/5
N2 - Nitrogen-doped carbon nanotubes (N-CNTs) prepared by carbonization of polypyrrole nanotubes (PPy-NTs) are used as supports. Pt–CeO2/N-CNTs electrocatalysts are successfully prepared by in-situ growth of Pt and CeO2 nanoparticles (NPs) via a one-step coupling method of co-deposition and ethylene glycol reduction. Through structural characterization and electrochemical tests of the prepared electrocatalysts, the effects of preparation conditions on the structure of the electrocatalysts and their electrocatalytic activity for methanol oxidation were systematically investigated. The results verify that the Pt–CeO2/N-CNTs electrocatalysts were prepared using N-CNTs calcined at 700 °C as a support and 15 mM alkali concentration. They have the largest electrochemical active area and methanol oxidation mass activity of 85 m2 g−1(Pt) and 722 A g−1(Pt), respectively. Furthermore, the electrochemical stability and anti-CO poisoning performance of the electrocatalysts are significantly better than those of the commercial Pt/C electrocatalysts. The highly-dispersed Pt and CeO2 in Pt–CeO2/N-CNTs, a large number of N sites, and the synergistic action of Pt, CeO2, and N-CNTs result in a catalyst with excellent electrocatalytic activity, stability, and resistance to CO poisoning. The support structure and the dispersion of Pt and CeO2 can be controlled by changing the preparation conditions, which provides a basis for the industrial application of direct methanol fuel cells.
AB - Nitrogen-doped carbon nanotubes (N-CNTs) prepared by carbonization of polypyrrole nanotubes (PPy-NTs) are used as supports. Pt–CeO2/N-CNTs electrocatalysts are successfully prepared by in-situ growth of Pt and CeO2 nanoparticles (NPs) via a one-step coupling method of co-deposition and ethylene glycol reduction. Through structural characterization and electrochemical tests of the prepared electrocatalysts, the effects of preparation conditions on the structure of the electrocatalysts and their electrocatalytic activity for methanol oxidation were systematically investigated. The results verify that the Pt–CeO2/N-CNTs electrocatalysts were prepared using N-CNTs calcined at 700 °C as a support and 15 mM alkali concentration. They have the largest electrochemical active area and methanol oxidation mass activity of 85 m2 g−1(Pt) and 722 A g−1(Pt), respectively. Furthermore, the electrochemical stability and anti-CO poisoning performance of the electrocatalysts are significantly better than those of the commercial Pt/C electrocatalysts. The highly-dispersed Pt and CeO2 in Pt–CeO2/N-CNTs, a large number of N sites, and the synergistic action of Pt, CeO2, and N-CNTs result in a catalyst with excellent electrocatalytic activity, stability, and resistance to CO poisoning. The support structure and the dispersion of Pt and CeO2 can be controlled by changing the preparation conditions, which provides a basis for the industrial application of direct methanol fuel cells.
KW - Alkali concentration nitrogen-doped carbon nanotubes
KW - Co-deposition of Pt and CeO
KW - Methanol electrocatalytic oxidation
KW - Synergistic effect
UR - http://www.scopus.com/inward/record.url?scp=85153885950&partnerID=8YFLogxK
U2 - 10.1016/j.ijhydene.2023.04.137
DO - 10.1016/j.ijhydene.2023.04.137
M3 - Article
AN - SCOPUS:85153885950
SN - 0360-3199
VL - 48
SP - 29565
EP - 29582
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
IS - 76
ER -