Hydrogen cycling by enzymes: electrocatalysis and implications for future energy technology

被引:35
|
作者
Vincent, KA [1 ]
Cracknell, JA [1 ]
Parkin, A [1 ]
Armstrong, FA [1 ]
机构
[1] Univ Oxford, Inorgan Chem Lab, Dept Chem, Oxford OX1 3QR, England
关键词
CATALYTIC ELECTRON-TRANSPORT; ACTIVE-SITE; ALLOCHROMATIUM-VINOSUM; DESULFOVIBRIO-GIGAS; IRON HYDROGENASE; NIFE HYDROGENASE; ACTIVATION; NICKEL; ELECTROKINETICS; UNREADY;
D O I
10.1039/b508520a
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Hydrogenases provide an inspiration for future energy technologies. The active sites of these microbial enzymes contain Fe or Ni and Fe coordinated by CO and CN ligands: yet they have activities for hydrogen cycling that compare with Pt catalysts. Is there a future for enzymes in technological H-2 cycling? There are obviously going to be disadvantages, perhaps overwhelming, as enzymes are notoriously fragile; yet what are the positive aspects and can we learn any chemistry that might be applied to produce the electrolytic and fuel cell catalysts of the future? We have developed a suite of novel electrochemical experiments to probe the chemistry of hydrogenases. The reactions are controlled and monitored at the surface of a small electrode, and characteristic catalytic properties are discernible from tiny amounts of sample material, so this approach can be used to search the microbial world for the best catalysts. Although electrochemistry does not provide structural information directly, it does give a "roadmap" by which to navigate the pathways and conditions that lead to particular states of the enzymes. This has prompted many interdisciplinary collaborations with other scientists who have provided microbiological, spectroscopic and structural contexts for this work. This article describes how these electrochemical experiments are set up, the data are analysed, and the results interpreted. We have determined mechanisms of catalysis, electron transfer, activation and inactivation, and defined important properties such as O-2 tolerance and CO resistance in physical terms. Using an O-2-tolerant hydrogenase, we have demonstrated a "proof of concept" miniature fuel cell that will run on a mixed H-2/O-2 feed in aqueous solution.
引用
收藏
页码:3397 / 3403
页数:7
相关论文
共 6 条
  • [1] Dynamic electrochemical investigations of hydrogen oxidation and production by enzymes and implications for future technology
    Armstrong, Fraser A.
    Belsey, Natalie A.
    Cracknell, James A.
    Goldet, Gabrielle
    Parkin, Alison
    Reisner, Erwin
    Vincent, Kylie A.
    Wait, Annemarie F.
    CHEMICAL SOCIETY REVIEWS, 2009, 38 (01) : 36 - 51
  • [2] Electrocatalytic mechanism of reversible hydrogen cycling by enzymes and distinctions between the major classes of hydrogenases
    Hexter, Suzannah V.
    Grey, Felix
    Happe, Thomas
    Climent, Victor
    Armstrong, Fraser A.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (29) : 11516 - 11521
  • [3] Hydrogen activation on organometallic complexes and H2 production, utilization, and storage for future energy
    Kubas, Gregory J.
    JOURNAL OF ORGANOMETALLIC CHEMISTRY, 2009, 694 (17) : 2648 - 2653
  • [4] Hydrogen solubility and diffusivity near surface of nickel single crystals: Some implications of elastic energy
    Traisnel, C.
    Metsue, A.
    Oudriss, A.
    Bouhattate, J.
    Feaugas, X.
    COMPUTATIONAL MATERIALS SCIENCE, 2021, 188
  • [5] Coordination Effect-Promoted Durable Ni(OH)2 for Energy-Saving Hydrogen Evolution from Water/Methanol Co-Electrocatalysis
    Fu, Guodong
    Kang, Xiaomin
    Zhang, Yan
    Yang, Xiaoqiang
    Wang, Lei
    Fu, Xian-Zhu
    Zhang, Jiujun
    Luo, Jing-Li
    Liu, Jianwen
    NANO-MICRO LETTERS, 2022, 14 (01)
  • [6] Segregation energy of the hydrogen at Ni Σ3 grain boundaries: some implications of the atomic volume and the interstitial self-stress
    Hallil, Abdelmalek
    Metsue, Arnaud
    Oudriss, Abdelali
    Bouhattate, Jamaa
    Feaugas, Xavier
    JOURNAL OF MATERIALS SCIENCE, 2018, 53 (07) : 5356 - 5363