Tailoring nanostructured catalysts for electrochemical energy conversion systems

被引:11
|
作者
Gago, Aldo S. [1 ]
Habrioux, Aurelien [1 ]
Alonso-Vante, Nicolas [1 ]
机构
[1] Univ Poitiers, UMR CNRS IC2MP 7285, F-86022 Poitiers, France
关键词
electrochemistry; laminar flow fuel cell (LFFC); Li-air battery; micro-direct methanol fuel cell (mu DMFC); nanoparticles; nucleation; proton exchange membrane fuel cell (PEMFC); synthesis; OXYGEN-REDUCTION REACTION; PEM FUEL-CELL; WALLED CARBON NANOTUBES; PLATINUM-RUTHENIUM NANOPARTICLES; SUPPORTED COSE2 NANOPARTICLES; LITHIUM-AIR BATTERIES; METAL BIPOLAR PLATES; EXCHANGE MEMBRANE; FORMIC-ACID; ELECTROCATALYTIC OXIDATION;
D O I
10.1515/ntrev-2012-0013
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This review covers topics related to the synthesis of nanoparticles, the anodic and cathodic electrochemical reactions and low temperature electrochemical energy devices. The thermodynamic aspects of nucleation and growth of nanoparticles are discussed. Different methods of chemical synthesis such as w/o microemulsion, Bonnemann, polyol and carbonyl are presented. How the electrochemical reactions take place on the surface of the catalytic nanoparticles and the importance of the substrate is put in evidence. The use of nanomaterials in low temperature energy devices such as H-2/O-2 polymer electrolyte or proton exchange membrane fuel cell (PEMFC) and micro-direct methanol fuel cell (mu DMFC), as well as recent progress and durability, is discussed. Special attention is given to the novel laminar flow fuel cell (LFFC). This review starts with the genesis of catalytic nanoparticles, continues with the surface electrochemical reactions that occur on them, and finally it discusses their application in electrochemical energy devices such as low temperature fuel cells or Li-air batteries.
引用
收藏
页码:427 / 453
页数:27
相关论文
共 50 条
  • [1] Electrodeposition of nanostructured catalysts for electrochemical energy conversion: Current trends and innovative strategies
    Lopez, Miguel Bernal
    Ustarroz, Jon
    CURRENT OPINION IN ELECTROCHEMISTRY, 2021, 27
  • [2] Nanostructured energy materials for electrochemical energy conversion and storage: A review
    Xueqiang Zhang
    Xinbing Cheng
    Qiang Zhang
    Journal of Energy Chemistry, 2016, 25 (06) : 967 - 984
  • [3] Nanostructured energy materials for electrochemical energy conversion and storage: A review
    Zhang, Xueqiang
    Cheng, Xinbing
    Zhang, Qiang
    JOURNAL OF ENERGY CHEMISTRY, 2016, 25 (06) : 967 - 984
  • [4] Nanostructured Spinel Manganates and Their Composites for Electrochemical Energy Conversion and Storage
    Rani, Balasubramanian Jansi
    Sivanantham, Arumugam
    Cho, In Sun
    ADVANCED FUNCTIONAL MATERIALS, 2023, 33 (40)
  • [5] Single-Atom Catalysts: A Perspective toward Application in Electrochemical Energy Conversion
    Speck, Florian D.
    Kim, Jae Hyung
    Bae, Geunsu
    Joo, Sang Hoon
    Mayrhofer, Karl J. J.
    Choi, Chang Hyuck
    Cherevko, Serhiy
    JACS AU, 2021, 1 (08): : 1086 - 1100
  • [6] Nanostructured multifunctional electrocatalysts for efficient energy conversion systems: Recent perspectives
    Rahman, Sheikh Tareq
    Rhee, Kyong Yop
    Park, Soo-Jin
    NANOTECHNOLOGY REVIEWS, 2021, 10 (01) : 137 - 157
  • [7] Microbes as Electrochemical CO2 Conversion Catalysts
    Song, Jieun
    Kim, Yousung
    Lim, Miran
    Lee, Hojun
    Lee, Jong In
    Shin, Woonsup
    CHEMSUSCHEM, 2011, 4 (05) : 587 - 590
  • [8] Electrochemical energy storage and conversion: An overview
    Ragupathy, Pitchai
    Bhat, Santoshkumar Dattatray
    Kalaiselvi, Nallathamby
    WILEY INTERDISCIPLINARY REVIEWS-ENERGY AND ENVIRONMENT, 2023, 12 (02)
  • [9] CO2-to-HCOOH Electrochemical Conversion on Nanostructured CuxPd100-x/Carbon Catalysts
    Sahin, Nihat Ege
    Comminges, Clement
    Arrii, Sandrine
    Napporn, Teko W.
    Kokoh, Kouakou B.
    CHEMELECTROCHEM, 2021, 8 (07) : 1362 - 1368
  • [10] Carbon-Supported Single Atom Catalysts for Electrochemical Energy Conversion and Storage
    Peng, Yi
    Lu, Bingzhang
    Chen, Shaowei
    ADVANCED MATERIALS, 2018, 30 (48)