Mechanisms of pH-Dependent Activity for Water Oxidation to Molecular Oxygen by MnO2 Electrocatalyst

被引:487
|
作者
Takashima, Toshihiro [1 ]
Hashimoto, Kazuhito [1 ,2 ]
Nakamura, Ryuhei [1 ]
机构
[1] Univ Tokyo, Sch Engn, Dept Appl Chem, Bunkyo Ku, Tokyo 1138656, Japan
[2] Exploratory Res Adv Technol ERATO Japan Sci & Tec, Hashimoto Light Energy Convers Project, Chiyoda Ku, Tokyo 1020076, Japan
基金
日本科学技术振兴机构;
关键词
COLLOIDAL MANGANESE-DIOXIDE; NA-RICH BIRNESSITE; O BOND FORMATION; ELECTRON-TRANSFER; EVOLVING COMPLEX; PHOTOSYSTEM-II; ANODIC CHARACTERISTICS; HEXAGONAL BIRNESSITE; OXIDE CLUSTERS; SURFACE-STATES;
D O I
10.1021/ja206511w
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Manganese oxides function as efficient electrocatalysts for water oxidation to molecular oxygen in strongly alkaline conditions, but are inefficient at neutral pH. To provide new insight into the mechanism underlying the pH-dependent activity of the electrooxidation reaction, we performed UV-vis spectroelectrochemical detection of the intermediate species for water oxidation by a manganese oxide electrode. Layered manganese oxide nanoparticles, delta-MnO2 (K-0.17[Mn0.904+Mn0.073+square 0.03]O-2 center dot 0.53H(2)O) deposited on fluorine-doped tin oxide electrodes were shown to catalyze water oxidation at pH from 4 to 13. At this pH range, a sharp rise in absorption at 510 nm was observed with a concomitant increase of anodic current for O-2 evolution. Using pyrophosphate as a probe molecule, the 510 nm absorption was attributable to Mn3+ on the surface of delta-MnO2. The onset potential of the water oxidation current was constant at approximately 1.5 V vs SHE from pH 4 to pH 8, but sharply shifted to negative at pH > 8. Strikingly, this behavior was well reproduced by the pH dependence of the onset of 510 nm absorption, indicating that Mn3+ acts as the precursor of water oxidation. Mn3+ is unstable at pH < 9 due to the dispropottionation reaction resulting in the formation of Mn2+ and Mn4+, whereas it is effectively stabilized by the comproportionation of Mn2+ and Mn4+ in alkaline conditions. Thus, the low activity of manganese oxides for water oxidation under neutral conditions is most likely due to the inherent instability of Mn3+, whose accumulation at the surface of catalysts requires the electrochemical oxidation of Mn2+ at a potential of approximately 1.4 V. This new model suggests that the control of the disproportionation and comproportionation efficiencies of Mn3+ is essential for the development of Mn catalysts that afford water oxidation with a small overpotential at neutral pH.
引用
收藏
页码:1519 / 1527
页数:9
相关论文
共 50 条
  • [31] Catalytic oxidation of phenol over MnO2 in supercritical water
    Yu, Jianli
    Savage, Phillip E.
    Industrial and Engineering Chemistry Research, 1999, 38 (10): : 3793 - 3801
  • [32] Diffusion- and pH-Dependent Reactivity of Layer-Type MnO2: Reactions at Particle Edges versus Vacancy Sites
    Wang, Yuheng
    Benkaddour, Sassi
    Marafatto, Francesco Femi
    Pena, Jasquelin
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2018, 52 (06) : 3476 - 3485
  • [33] γ-MnO2 octahedral molecular sieve: Preparation, characterization, and catalytic activity in the atmospheric oxidation of toluene
    Jin, Lei
    Chen, Chun-hu
    Crisostomo, Vincent Mark B.
    Xu, Linping
    Son, Young-Chan
    Suib, Steven L.
    APPLIED CATALYSIS A-GENERAL, 2009, 355 (1-2) : 169 - 175
  • [34] Tunable pH-dependent oxygen evolution activity of strontium cobaltite thin films for electrochemical water splitting
    Shi, Yanuo
    Xie, Renjie
    Liu, Xuetao
    Zhang, Nian
    Aruta, Carmela
    Yang, Nan
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2019, 21 (29) : 16230 - 16239
  • [35] Enhanced water oxidation stability and activity in MnO2 nanosheet arrays through Ti doping
    Liu, Yang
    Ma, Shaokai
    Zhang, Shiqing
    Liu, Fang
    Wang, Ying
    Sun, Xinyu
    Li, Ying
    Xue, Yanming
    Tang, Chengchun
    Zhang, Jun
    FUEL, 2024, 374
  • [36] Single-Atom Ni Anchored on α-MnO2 Nanorods as an Electrocatalyst for the Oxygen Evolution and Oxygen Reduction Reactions
    Xie, Jianan
    Chen, Yilong
    He, Zhanglong
    Liu, Shan
    Liu, Yuling
    Li, Bin
    Xu, Tianjian
    Ning, Xiaohui
    Chen, Shuguang
    Zeng, Taotao
    He, Hao
    ACS APPLIED NANO MATERIALS, 2024, 7 (15) : 18027 - 18035
  • [37] Synergistic In-Layer Cobalt Doping and Interlayer Iron Intercalation into Layered MnO2 Produces an Efficient Water Oxidation Electrocatalyst
    McKendry, Ian G.
    Mohamad, Loveyy J.
    Thenuwara, Akila C.
    Marshall, Tim
    Borguet, Eric
    Strongin, Daniel R.
    Zdilla, Michael J.
    ACS ENERGY LETTERS, 2018, 3 (09): : 2280 - 2285
  • [38] Removal mechanisms of cadmium by δ-MnO2 in adsorption and coprecipitation processes at pH 6
    Suzuki, Kohei
    Kato, Tatsuya
    Fuchida, Shigeshi
    Tokoro, Chiharu
    CHEMICAL GEOLOGY, 2020, 550 (550)
  • [39] Effect of nickel-ion doping in MnO2 nanoneedles as electrocatalyst for the oxygen reduction reaction
    Jiayu Hao
    Yisi Liu
    Haibo Shen
    Wenzhang Li
    Jie Li
    Yaomin Li
    Qiyuan Chen
    Journal of Materials Science: Materials in Electronics, 2016, 27 : 6598 - 6605
  • [40] Polyaniline/β-MnO2 nanocomposites as cathode electrocatalyst for oxygen reduction reaction in microbial fuel cells
    Zhou, Xinxing
    Xu, Yunzhi
    Mei, Xiaojie
    Du, Ningjie
    Jv, Rongmao
    Hu, Zhaoxia
    Chen, Shouwen
    CHEMOSPHERE, 2018, 198 : 482 - 491