TY - JOUR
T1 - High-Capacity F-Doped Na0.7MnO2.05 with Balanced Voltage Distribution for Decoupled Water Electrolysis
AU - Zhou, Wangle
AU - Zhou, Liwu
AU - Wang, Yun Hai
AU - Chen, Qingyun
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/1/27
Y1 - 2025/1/27
N2 - Decoupled water electrolysis, which utilizes redox mediators to separate the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) in space and time, is considered a potential method for producing high-purity green hydrogen. However, there are some key challenges in decoupled water electrolysis using solid-state redox mediators, such as redox potentials, voltage distribution, capacity limitations, and material stability. Here, F-doped Na0.7MnO2.05 (NMOF) with an appropriate redox potential, high capacity, and stability was synthesized by a simple sol-gel method. The redox peak pair of NMOF was located at −0.064 V/-0.314 V (vs Hg/HgO), which is located between the onset potentials of the HER and OER. By F-doping, F-Mn bonds significantly inhibited the dissolution of Mn2+ in the electrolyte, thereby reducing the Jahn-Teller effect and improving the cycling stability of Na-ion insertion and removal in Na0.7MnO2.05. NMOF prepared by adding 5 mol/% NaF at 850 °C (named NMOF2) exhibited excellent electrochemical performance, with a discharge capacity of 114.3 mAh/g at a current density of 0.5 A/g. Using NMOF2 for decoupled water electrolysis, voltage balance distribution was achieved, and hydrogen and oxygen production was achieved at such low voltages (0.85 V for the HER process and 0.89 V for the OER process) at a current density of 5 mA/cm2. These suggest that NMOF2 could be a promising material for decoupled water electrolysis.
AB - Decoupled water electrolysis, which utilizes redox mediators to separate the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) in space and time, is considered a potential method for producing high-purity green hydrogen. However, there are some key challenges in decoupled water electrolysis using solid-state redox mediators, such as redox potentials, voltage distribution, capacity limitations, and material stability. Here, F-doped Na0.7MnO2.05 (NMOF) with an appropriate redox potential, high capacity, and stability was synthesized by a simple sol-gel method. The redox peak pair of NMOF was located at −0.064 V/-0.314 V (vs Hg/HgO), which is located between the onset potentials of the HER and OER. By F-doping, F-Mn bonds significantly inhibited the dissolution of Mn2+ in the electrolyte, thereby reducing the Jahn-Teller effect and improving the cycling stability of Na-ion insertion and removal in Na0.7MnO2.05. NMOF prepared by adding 5 mol/% NaF at 850 °C (named NMOF2) exhibited excellent electrochemical performance, with a discharge capacity of 114.3 mAh/g at a current density of 0.5 A/g. Using NMOF2 for decoupled water electrolysis, voltage balance distribution was achieved, and hydrogen and oxygen production was achieved at such low voltages (0.85 V for the HER process and 0.89 V for the OER process) at a current density of 5 mA/cm2. These suggest that NMOF2 could be a promising material for decoupled water electrolysis.
KW - F-doped NaMnO
KW - NaMnO
KW - decoupled water electrolysis
KW - hydrogen
KW - solid-state redox mediators
UR - https://www.scopus.com/pages/publications/85215562206
U2 - 10.1021/acsaem.4c02741
DO - 10.1021/acsaem.4c02741
M3 - 文章
AN - SCOPUS:85215562206
SN - 2574-0962
VL - 8
SP - 1241
EP - 1247
JO - ACS Applied Energy Materials
JF - ACS Applied Energy Materials
IS - 2
ER -