Surface engineering for stable electrocatalysis

被引:59
作者
Do, Viet-Hung [1 ,2 ]
Lee, Jong-Min [1 ,2 ]
机构
[1] Nanyang Technol Univ, Sch Chem Chem Engn & Biotechnol, 62 Nanyang Dr, Singapore 637459, Singapore
[2] Nanyang Technol Univ, Energy Res Inst NTU ERIN, 1 CleanTech Loop 06-04, Nanyang 637141, Singapore
关键词
OXYGEN REDUCTION REACTION; HYDROGEN EVOLUTION REACTION; FUEL-CELL CATALYSTS; X-RAY SPECTROSCOPY; IN-SITU; WATER OXIDATION; CO2; REDUCTION; STRUCTURAL EVOLUTION; HIGH-PERFORMANCE; PLATINUM NANOPARTICLES;
D O I
10.1039/d3cs00292f
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In recent decades, significant progress has been achieved in rational developments of electrocatalysts through constructing novel atomistic structures and modulating catalytic surface topography, realizing substantial enhancement in electrocatalytic activities. Numerous advanced catalysts were developed for electrochemical energy conversion, exhibiting low overpotential, high intrinsic activity, and selectivity. Yet, maintaining the high catalytic performance under working conditions with high polarization and vigorous microkinetics that induce intensive degradation of surface nanostructures presents a significant challenge for commercial applications. Recently, advanced operando and computational techniques have provided comprehensive mechanistic insights into the degradation of surficial functional structures. Additionally, various innovative strategies have been devised and proven effective in sustaining electrocatalytic activity under harsh operating conditions. This review aims to discuss the most recent understanding of the degradation microkinetics of catalysts across an entire range of anodic to cathodic polarizations, encompassing processes such as oxygen evolution and reduction, hydrogen reduction, and carbon dioxide reduction. Subsequently, innovative strategies adopted to stabilize the materials' structure and activity are highlighted with an in-depth discussion of the underlying rationale. Finally, we present conclusions and perspectives regarding future research and development. By identifying the research gaps, this review aims to inspire further exploration of surface degradation mechanisms and rational design of durable electrocatalysts, ultimately contributing to the large-scale utilization of electroconversion technologies. Unprecedented insights into electrochemical surface dynamics from operando studies inspire electronic and topographical strategies, paving the way for sustained electrocatalytic performance across HER, OER, ORR, and CO2RR applications.
引用
收藏
页码:2693 / 2737
页数:45
相关论文
共 335 条
  • [1] Iridium Oxide for the Oxygen Evolution Reaction: Correlation between Particle Size, Morphology, and the Surface Hydroxo Layer from Operando XAS
    Abbott, Daniel F.
    Lebedev, Dmitry
    Waltar, Kay
    Povia, Mauro
    Nachtegaal, Maarten
    Fabbri, Emiliana
    Coperet, Christophe
    Schmidt, Thomas J.
    [J]. CHEMISTRY OF MATERIALS, 2016, 28 (18) : 6591 - 6604
  • [2] Fe Coordination Environment, Fe-Incorporated Ni(OH)2 Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
    Acharya, Prashant
    Manso, Ryan H.
    Hoffman, Adam S.
    Bakovic, Sergio I. Perez
    Kekedy-Nagy, Laszlo
    Bare, Simon R.
    Chen, Jingyi
    Greenlee, Lauren F.
    [J]. ACS CATALYSIS, 2022, 12 (03): : 1992 - 2008
  • [3] Reduction and Agglomeration of Supported Metal Clusters Induced by High-Flux X-ray Absorption Spectroscopy Measurements
    Albrahim, Malik
    Thompson, Coogan
    Leshchev, Denis
    Shrotri, Abhijit
    Unocic, Raymond R.
    Hong, Jiyun
    Hoffman, Adam S.
    Meloni, Michael J.
    Runnebaum, Ron C.
    Bare, Simon R.
    Stavitski, Eli
    Karim, Ayman M.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2021, 125 (20) : 11048 - 11057
  • [4] How many surface atoms in Co3O4 take part in oxygen evolution? Isotope labeling together with differential electrochemical mass spectrometry
    Amin, Hatem M. A.
    Baltruschat, Helmut
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2017, 19 (37) : 25527 - 25536
  • [5] Structural Evolution of a PtRh Nanodendrite Electrocatalyst and Its Ultrahigh Durability toward Oxygen Reduction Reaction
    An, Zhao
    Li, Huanqiao
    Zhang, Xiaoming
    Xu, Xinlong
    Xia, Zhangxun
    Yu, Shansheng
    Chu, Wenling
    Wang, Suli
    Sun, Gongquan
    [J]. ACS CATALYSIS, 2022, 12 (06) : 3302 - 3308
  • [6] Influence of Temperature and Electrolyte Concentration on the Structure and Catalytic Oxygen Evolution Activity of Nickel-Iron Layered Double Hydroxide
    Andronescu, Corina
    Seisel, Sabine
    Wilde, Patrick
    Barwe, Stefan
    Masa, Justus
    Chen, Yen-Ting
    Ventosa, Edgar
    Schuhmann, Wolfgang
    [J]. CHEMISTRY-A EUROPEAN JOURNAL, 2018, 24 (52) : 13773 - 13777
  • [7] Carbon-based hydrogels: synthesis and their recent energy applications
    Anjali, Jayakumar
    Jose, Vishal K.
    Lee, Jong-Min
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (26) : 15491 - 15518
  • [8] [Anonymous], TECHNICAL TARGETS LI
  • [9] Oxygen reduction reaction of FeN4 center embedded in graphene and carbon nanotube: Density functional calculations
    Aoyama, Syuya
    Kaiwa, Jun
    Chantngarm, Peerasak
    Tanibayashi, Satoru
    Saito, Hiroaki
    Hasegawa, Masayuki
    Nishidate, Kazume
    [J]. AIP ADVANCES, 2018, 8 (11):
  • [10] Elemental Anisotropic Growth and Atomic-Scale Structure of Shape-Controlled Octahedral Pt-Ni-Co Alloy Nanocatalysts
    Aran-Ais, Rosa M.
    Dionigi, Fabio
    Merzdorf, Thomas
    Gocyla, Martin
    Heggen, Marc
    Dunin-Borkowski, Rafal E.
    Gliech, Manuel
    Solla-Gullon, Jose
    Herrero, Enrique
    Feliu, Juan M.
    Strasser, Peter
    [J]. NANO LETTERS, 2015, 15 (11) : 7473 - 7480