Peat as a carbon source for non-platinum group metal oxygen electrocatalysts and AEMFC cathodes

被引:15
作者
Teppor, Patrick [1 ]
Jager, Rutha [1 ]
Paalo, Maarja [1 ]
Adamson, Anu [1 ]
Harmas, Meelis [1 ]
Volobujeva, Olga [2 ]
Aruvali, Jaan [3 ]
Palm, Rasmus [1 ]
Lust, Enn [1 ]
机构
[1] Univ Tartu, Inst Chem, Ravila 14a, EE-50411 Tartu, Estonia
[2] Tallinn Univ Technol, Dept Mat Sci, Ehitajate Tee 5, EE-19086 Tallinn, Estonia
[3] Univ Tartu, Inst Ecol & Earth Sci, Ravila 14a, EE-50411 Tartu, Estonia
关键词
Biomass; Fuel cells; Non-platinum group metal catalyst; Oxygen reduction reaction; Oxygen evolution reaction; ANION-EXCHANGE MEMBRANE; REDUCTION REACTION; FUEL-CELLS; WATER OXIDATION; EVOLUTION CATALYSTS; HYDROGEN-PRODUCTION; SIZE DISTRIBUTION; HIGH-CONDUCTIVITY; TRANSITION-METAL; RECENT PROGRESS;
D O I
10.1016/j.ijhydene.2022.03.199
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Naturally abundant well-decomposed peat was used as a precursor for synthesizing several non-platinum group metal-type oxygen electrocatalysts. The materials were studied in an alkaline environment, where it was discovered that the oxygen evolution (OER) and the oxygen reduction (ORR) activity of the catalysts can be severely influenced by changing the parameters of the peat carbonization procedure. High OER activity was achieved with a minimally treated catalyst which seemed to be because of a Co-rich FeCo alloy species. In both rotating disc electrode and anion exchange membrane fuel cell ex-periments, the catalyst based on ZnCl2-activated peat-derived carbon showed superior ORR performance with a peak power density of 51 mW cm (-2). It was found that the peak power densities of the catalysts correlated with several physical parameters. Above all, we demonstrate the possibility of fabricating advanced functional carbon materials for oxygen electrocatalysis from peat. (c) 2022 The Authors. Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC. This is an open access article under the CC BY license (http://creativecommons.org/ licenses/by/4.0/).
引用
收藏
页码:16908 / 16920
页数:13
相关论文
共 83 条
  • [1] Understanding how single-atom site density drives the performance and durability of PGM-free Fe-N-C cathodes in anion exchange membrane fuel cells
    Adabi, Horie
    Santori, Pietro Giovanni
    Shakouri, Abolfazl
    Peng, Xiong
    Yassin, Karam
    Rasin, Igal G.
    Brandon, Simon
    Dekel, Dario R.
    Ul Hassan, Noor
    Sougrati, Moulay-Tahar
    Zitolo, Andrea
    Varcoe, John R.
    Regalbuto, John R.
    Jaouen, Frederic
    Mustain, William E.
    [J]. MATERIALS TODAY ADVANCES, 2021, 12 (12)
  • [2] Peat-derived hard carbon electrodes with superior capacity for sodium-ion batteries
    Adamson, Anu
    Vali, Ronald
    Paalo, Maarja
    Aruvali, Jaan
    Koppel, Miriam
    Palm, Rasmus
    Haerk, Eneli
    Nerut, Jaak
    Romann, Tavo
    Lust, Enn
    Janes, Atar
    [J]. RSC ADVANCES, 2020, 10 (34) : 20145 - 20154
  • [3] Single Cell Fabrication Towards the Realistic Evaluation of a CNT-Strung ZIF-Derived Electrocatalyst as a Cathode Material in Alkaline Fuel Cells and Metal-Air Batteries
    Aiyappa, Harshitha Barike
    Bhange, Siddheshwar N.
    Sivasankaran, Vijitha P.
    Kurungot, Sreekumar
    [J]. CHEMELECTROCHEM, 2017, 4 (11): : 2928 - 2933
  • [4] Flexible production of green hydrogen and ammonia from variable solar and wind energy: Case study of Chile and Argentina
    Armijo, Julien
    Philibert, Cedric
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (03) : 1541 - 1558
  • [5] Potential and economic viability of green hydrogen production by water electrolysis using wind energy resources in South Africa
    Ayodele, T. R.
    Munda, J. L.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (33) : 17669 - 17687
  • [6] Critical advancements in achieving high power and stable nonprecious metal catalyst-based MEAs for real-world proton exchange membrane fuel cell applications
    Banham, Dustin
    Kishimoto, Takeaki
    Zhou, Yingjie
    Sato, Tetsutaro
    Bai, Kyoung
    Ozaki, Jun-ichi
    Imashiro, Yasuo
    Ye, Siyu
    [J]. SCIENCE ADVANCES, 2018, 4 (03):
  • [7] PEM electrolysis for production of hydrogen from renewable energy sources
    Barbir, F
    [J]. SOLAR ENERGY, 2005, 78 (05) : 661 - 669
  • [8] Novel carbon-supported Fe-N electrocatalysts synthesized through heat treatment of iron tripyridyl triazine complexes for the PEM fuel cell oxygen reduction reaction
    Bezerra, Cicero W. B.
    Zhang, Lei
    Lee, Kunchan
    Liu, Hansan
    Zhang, Jianlu
    Shi, Zheng
    Marques, Aldalea L. B.
    Marques, Edmar P.
    Wu, Shaohong
    Zhang, Jiujun
    [J]. ELECTROCHIMICA ACTA, 2008, 53 (26) : 7703 - 7710
  • [9] An outlook towards hydrogen supply chain networks in 2050-Design of novel fuel infrastructures in Germany
    Bique, Anton Ochoa
    Zondervan, Edwin
    [J]. CHEMICAL ENGINEERING RESEARCH & DESIGN, 2018, 134 : 90 - 103
  • [10] Integrating PGM-Free Catalysts into Catalyst Layers and Proton Exchange Membrane Fuel Cell Devices
    Bonham, Dustin
    Choi, Ja-Yeon
    Kishimoto, Takeaki
    Ye, Siyu
    [J]. ADVANCED MATERIALS, 2019, 31 (31)