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DFT investigation on oxygen reduction reaction over nitrogen (N) doped graphdiyne as electrocatalyst: the importance of preadsorbed OH* and solvation effect
Тип публикации: Journal Article
Дата публикации: 2023-09-22
SCImago Q1
WOS Q2
БС2
SJR: 0.981
CiteScore: 9.5
Impact factor: 4.7
ISSN: 26335409
Chemistry (miscellaneous)
General Materials Science
Краткое описание
Searching for novel electrocatalysts that can replace precious platinum for oxygen reduction reaction (ORR) is important for developing fuel cells. Recently, nitrogen (N) doped graphdiyne (GDY) has been synthesized and proved that the ORR electrocatalytic activity catalyzed by N-doped GDY is significantly improved, however, the roles of sp-N (including sp-N1 and sp-N2) and pyridinic (Pyri)-N dopants in mediating the ORR are still unclear. To clarify which sp-N or Pyri-N creates the active site for ORR, we systematically studied the ORR mechanism on sp-N1GDY and pyri-NGDY supported on graphene (G) with the solvation effect, which was performed using density functional theory (DFT) and ab initio molecular dynamics (AIMD) simulations. Firstly, we found that the dissociative mechanism is preferred on sp-N1GDY/G and the surface is easily terminated by the OH* intermediates, while the OH* pre-adsorbed surface (sp-N1GDY(OH)/G) prefers the associative mechanism. Pyri-NGDY/G also prefers the associative mechanism without any termination. Then, the solvation effect stabilizes all ORR intermediates in both cases. From the calculated free energy diagram, a model with water solvent gives a more appropriate estimation of the overpotential than the one without the water solvent, and sp-N1GDY/G with OH* pre-adsorbed has a lower overpotential (0.46 V), which is close to the experimental value (0.36 V), compared with Pyri-NGDY/G (0.75 V). Our study provides useful information for understanding the reaction mechanisms of ORR at the solid/liquid interface on the N-doped GDY surface.
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Wang Y. et al. DFT investigation on oxygen reduction reaction over nitrogen (N) doped graphdiyne as electrocatalyst: the importance of preadsorbed OH* and solvation effect // Materials Advances. 2023. Vol. 4. No. 24. pp. 6542-6552.
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Wang Y., Pham T. N., Halim H. H., Yan L., Morikawa Y. DFT investigation on oxygen reduction reaction over nitrogen (N) doped graphdiyne as electrocatalyst: the importance of preadsorbed OH* and solvation effect // Materials Advances. 2023. Vol. 4. No. 24. pp. 6542-6552.
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TY - JOUR
DO - 10.1039/d3ma00502j
UR - https://xlink.rsc.org/?DOI=D3MA00502J
TI - DFT investigation on oxygen reduction reaction over nitrogen (N) doped graphdiyne as electrocatalyst: the importance of preadsorbed OH* and solvation effect
T2 - Materials Advances
AU - Wang, Yuelin
AU - Pham, Thanh Ngoc
AU - Halim, Harry H
AU - Yan, Li-Kai
AU - Morikawa, Yoshitada
PY - 2023
DA - 2023/09/22
PB - Royal Society of Chemistry (RSC)
SP - 6542-6552
IS - 24
VL - 4
SN - 2633-5409
ER -
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@article{2023_Wang,
author = {Yuelin Wang and Thanh Ngoc Pham and Harry H Halim and Li-Kai Yan and Yoshitada Morikawa},
title = {DFT investigation on oxygen reduction reaction over nitrogen (N) doped graphdiyne as electrocatalyst: the importance of preadsorbed OH* and solvation effect},
journal = {Materials Advances},
year = {2023},
volume = {4},
publisher = {Royal Society of Chemistry (RSC)},
month = {sep},
url = {https://xlink.rsc.org/?DOI=D3MA00502J},
number = {24},
pages = {6542--6552},
doi = {10.1039/d3ma00502j}
}
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Wang, Yuelin, et al. “DFT investigation on oxygen reduction reaction over nitrogen (N) doped graphdiyne as electrocatalyst: the importance of preadsorbed OH* and solvation effect.” Materials Advances, vol. 4, no. 24, Sep. 2023, pp. 6542-6552. https://xlink.rsc.org/?DOI=D3MA00502J.
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