TY - JOUR
T1 - High-spin atomically dispersed Mn(II)N4 site
T2 - Unraveling the catalytic activity and selectivity of oxygen reduction reaction in microbial fuel cell
AU - Wu, Yingxuan
AU - Wang, Tong
AU - Zhang, Dongnian
AU - Wang, Mengmeng
AU - Yang, Wenhan
AU - Kong, Chuncai
AU - Yang, Zhimao
AU - Yang, Shengchun
AU - Zhu, Hao
N1 - Publisher Copyright:
© 2025
PY - 2025/6
Y1 - 2025/6
N2 - Microbial fuel cell (MFC) presents an innovative eco-friendly technology, but its development is greatly hindered by expensive and inefficient cathodic oxygen reduction reaction (ORR) catalysts. Currently, CN-coordinated single-atom Fe-based or Co-based materials report have been widely recognized as a promising ORR catalyst. However, this application is constrained by the Fenton reaction. Consequently, it is particularly necessary to further advance innovative non-precious metal ORR catalysts. Herein, atomically dispersed Mn-N-C catalysts with a precise Mn(II)N4 structure are developed using a one-step calcination method, which is served as MFC cathodes for the ORR. The optimized Mn-N-C catalyst demonstrates a half-wave potential (E1/2) of 0.864 V, surpassing that of commercial Pt/C (0.855 V). Specifically, the catalyst exhibits outstanding four-electron ORR selectivity with H2O2 yields below 4 %. Theoretical calculations indicate that the generation of H2O2 by *OOH protonation at the Mn(II)N4 site is a non-spontaneous process. The high-spin Mn(II)N4 site greatly enhances catalytic activity through increased electron delocalization and effective interaction between σ and π orbitals near the Fermi energy level. Accordingly, Mn-N-C present excellent power density and high chemical oxygen demand (COD) removal in MFC. This study provides new insight about the metal valence state at the center of Mn single-atom materials in relation to ORR activity and selectivity.
AB - Microbial fuel cell (MFC) presents an innovative eco-friendly technology, but its development is greatly hindered by expensive and inefficient cathodic oxygen reduction reaction (ORR) catalysts. Currently, CN-coordinated single-atom Fe-based or Co-based materials report have been widely recognized as a promising ORR catalyst. However, this application is constrained by the Fenton reaction. Consequently, it is particularly necessary to further advance innovative non-precious metal ORR catalysts. Herein, atomically dispersed Mn-N-C catalysts with a precise Mn(II)N4 structure are developed using a one-step calcination method, which is served as MFC cathodes for the ORR. The optimized Mn-N-C catalyst demonstrates a half-wave potential (E1/2) of 0.864 V, surpassing that of commercial Pt/C (0.855 V). Specifically, the catalyst exhibits outstanding four-electron ORR selectivity with H2O2 yields below 4 %. Theoretical calculations indicate that the generation of H2O2 by *OOH protonation at the Mn(II)N4 site is a non-spontaneous process. The high-spin Mn(II)N4 site greatly enhances catalytic activity through increased electron delocalization and effective interaction between σ and π orbitals near the Fermi energy level. Accordingly, Mn-N-C present excellent power density and high chemical oxygen demand (COD) removal in MFC. This study provides new insight about the metal valence state at the center of Mn single-atom materials in relation to ORR activity and selectivity.
KW - Electronic structure
KW - High-spin
KW - Microbial fuel cell
KW - Mn-N-C
KW - Oxygen reduction reaction
KW - Single atom catalyst
UR - https://www.scopus.com/pages/publications/105000337306
U2 - 10.1016/j.jece.2025.116232
DO - 10.1016/j.jece.2025.116232
M3 - 文章
AN - SCOPUS:105000337306
SN - 2213-3437
VL - 13
JO - Journal of Environmental Chemical Engineering
JF - Journal of Environmental Chemical Engineering
IS - 3
M1 - 116232
ER -