TY - JOUR
T1 - Hollow Porous Carbon-Confined Atomically Ordered PtCo3Intermetallics for an Efficient Oxygen Reduction Reaction
AU - Hu, Yezhou
AU - Guo, Xuyun
AU - Shen, Tao
AU - Zhu, Ye
AU - Wang, Deli
N1 - Funding Information:
This work was financially supported by the National Natural Science Foundation (91963109), the Research Grants Council of Hong Kong (project no. C5029-18E), and the Hong Kong Polytechnic University grant (no. ZVRP). The authors thank the Analytical and Testing Center of the HUST for allowing the use of its help and facilities for XRD and XPS.
Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/5/6
Y1 - 2022/5/6
N2 - PtM3alloys have demonstrated superior oxygen reduction reaction (ORR) activity due to the strong strain effect caused by non-noble metal cores. However, the serious corrosion of non-noble metals in acid solutions is still challenging. Herein, a hollow porous N-doped carbon sphere-encapsulated PtCo3intermetallic electrocatalyst (O-PtCo3@HNCS) is successfully prepared through Co pre-embedding and the subsequent impregnation-reduction method. The Co pre-embedding step is responsible for the formation of abundant mesopores, and the subsequent impregnation-reduction process leads to Pt-Co ordering and carbon encapsulation. Benefiting from the accelerated mass transfer process, enhanced metal interaction, and physical confinement effect, O-PtCo3@HNCS exhibits excellent ORR activity and durability with negligible half-wave loss after long-term stability test in acid solutions. The ordered PtCo3nanoparticles tightly anchored in the carbon matrix without obvious aggregation, sintering, and agglomeration, responsible for the superior durability. The strategy for the carbon confinement in this work paves the way for achieving highly efficient catalysts with low Pt content, which can be used in various energy-related systems.
AB - PtM3alloys have demonstrated superior oxygen reduction reaction (ORR) activity due to the strong strain effect caused by non-noble metal cores. However, the serious corrosion of non-noble metals in acid solutions is still challenging. Herein, a hollow porous N-doped carbon sphere-encapsulated PtCo3intermetallic electrocatalyst (O-PtCo3@HNCS) is successfully prepared through Co pre-embedding and the subsequent impregnation-reduction method. The Co pre-embedding step is responsible for the formation of abundant mesopores, and the subsequent impregnation-reduction process leads to Pt-Co ordering and carbon encapsulation. Benefiting from the accelerated mass transfer process, enhanced metal interaction, and physical confinement effect, O-PtCo3@HNCS exhibits excellent ORR activity and durability with negligible half-wave loss after long-term stability test in acid solutions. The ordered PtCo3nanoparticles tightly anchored in the carbon matrix without obvious aggregation, sintering, and agglomeration, responsible for the superior durability. The strategy for the carbon confinement in this work paves the way for achieving highly efficient catalysts with low Pt content, which can be used in various energy-related systems.
KW - atomically ordered structure
KW - carbon encapsulation
KW - fuel cells
KW - hollow porous structure
KW - intermetallic electrocatalyst
UR - http://www.scopus.com/inward/record.url?scp=85129305335&partnerID=8YFLogxK
U2 - 10.1021/acscatal.2c01541
DO - 10.1021/acscatal.2c01541
M3 - Journal article
AN - SCOPUS:85129305335
SN - 2155-5435
VL - 12
SP - 5380
EP - 5387
JO - ACS Catalysis
JF - ACS Catalysis
IS - 9
ER -