Spiers Memorial Lecture. Next generation nanoelectrochemistry: the fundamental advances needed for applications

被引:18
作者
Wu, Yanfang [1 ,2 ]
Jamali, Sina [1 ,2 ]
Tilley, Richard D. [3 ,4 ]
Gooding, J. Justin [1 ,2 ]
机构
[1] Univ New South Wales, Sch Chem, Sydney, NSW 2052, Australia
[2] Univ New South Wales, Australian Ctr NanoMed, Sydney, NSW 2052, Australia
[3] Univ New South Wales, Mark Wainwright Analyt Ctr, Sch Chem, Sydney, NSW 2052, Australia
[4] Univ New South Wales, Mark Wainwright Analyt Ctr, Electron Microscope Unit, Sydney, NSW 2052, Australia
基金
澳大利亚研究理事会;
关键词
SINGLE ENTITY ELECTROCHEMISTRY; ELECTRON-TRANSFER; OXYGEN REDUCTION; HYDROGEN EVOLUTION; CATALYTIC-ACTIVITY; DOUBLE-LAYER; ION SIZE; PROTEIN; METAL; NANOPARTICLES;
D O I
10.1039/d1fd00088h
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
Nanoelectrochemistry, where electrochemical processes are controlled and investigated with nanoscale resolution, is gaining more and more attention because of the many potential applications in energy and sensing and the fact that there is much to learn about fundamental electrochemical processes when we explore them at the nanoscale. The development of instrumental methods that can explore the heterogeneity of electrochemistry occurring across an electrode surface, monitoring single molecules or many single nanoparticles on a surface simultaneously, have been pivotal in giving us new insights into nanoscale electrochemistry. Equally important has been the ability to synthesise or fabricate nanoscale entities with a high degree of control that allows us to develop nanoscale devices. Central to the latter has been the incredible advances in nanomaterial synthesis where electrode materials with atomic control over electrochemically active sites can be achieved. After introducing nanoelectrochemistry, this paper focuses on recent developments in two major application areas of nanoelectrochemistry; electrocatalysis and using single entities in sensing. Discussion of the developments in these two application fields highlights some of the advances in the fundamental understanding of nanoelectrochemical systems really driving these applications forward. Looking into our nanocrystal ball, this paper then highlights: the need to understand the impact of nanoconfinement on electrochemical processes, the need to measure many single entities, the need to develop more sophisticated ways of treating the potentially large data sets from measuring such many single entities, the need for more new methods for characterising nanoelectrochemical systems as they operate and the need for material synthesis to become more reproducible as well as possess more nanoscale control.
引用
收藏
页码:10 / 32
页数:23
相关论文
共 112 条
  • [1] Deep learning for single-molecule science
    Albrecht, Tim
    Slabaugh, Gregory
    Alonso, Eduardo
    Al-Arif, S. M. Masudur R.
    [J]. NANOTECHNOLOGY, 2017, 28 (42)
  • [2] The emerging landscape of single-molecule protein sequencing technologies
    Alfaro, Javier Antonio
    Bohlander, Peggy
    Dai, Mingjie
    Filius, Mike
    Howard, Cecil J.
    van Kooten, Xander F.
    Ohayon, Shilo
    Pomorski, Adam
    Schmid, Sonja
    Aksimentiev, Aleksei
    Anslyn, Eric V.
    Bedran, Georges
    Cao, Chan
    Chinappi, Mauro
    Coyaud, Etienne
    Dekker, Cees
    Dittmar, Gunnar
    Drachman, Nicholas
    Eelkema, Rienk
    Goodlett, David
    Hentz, Sebastien
    Kalathiya, Umesh
    Kelleher, Neil L.
    Kelly, Ryan T.
    Kelman, Zvi
    Kim, Sung Hyun
    Kuster, Bernhard
    Rodriguez-Larrea, David
    Lindsay, Stuart
    Maglia, Giovanni
    Marcotte, Edward M.
    Marino, John P.
    Masselon, Christophe
    Mayer, Michael
    Samaras, Patroklos
    Sarthak, Kumar
    Sepiashvili, Lusia
    Stein, Derek
    Wanunu, Meni
    Wilhelm, Mathias
    Yin, Peng
    Meller, Amit
    Joo, Chirlmin
    [J]. NATURE METHODS, 2021, 18 (06) : 604 - 617
  • [3] Controlling hydrogen evolution reaction activity on Ni core-Pt island nanoparticles by tuning the size of the Pt islands
    Alinezhad, Ali
    Benedetti, Tania M.
    Lian, Jiaxin
    Goncales, Vinicius R.
    Gooding, J. Justin
    Tilley, Richard D.
    [J]. CHEMICAL COMMUNICATIONS, 2021, 57 (22) : 2788 - 2791
  • [4] Direct Growth of Highly Strained Pt Islands on Branched Ni Nanoparticles for Improved Hydrogen Evolution Reaction Activity
    Alinezhad, Ali
    Gloag, Lucy
    Benedetti, Tania M.
    Cheong, Soshan
    Webster, Richard F.
    Roelsgaard, Martin
    Iversen, Bo B.
    Schuhmann, Wolfgang
    Gooding, J. Justin
    Tilley, Richard D.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2019, 141 (41) : 16202 - 16207
  • [5] Relationship between amperometric pre-spike feet and secretion granule composition in Chromaffin cells: An overview
    Amatore, Christian
    Arbault, Stphane
    Bonifas, Imelda
    Guille, Manon
    Lemaitre, Fredric
    Verchier, Yann
    [J]. BIOPHYSICAL CHEMISTRY, 2007, 129 (2-3) : 181 - 189
  • [6] Electrocatalysis in confined space
    Andronescu, Corina
    Masa, Justus
    Tilley, Richard D.
    Gooding, John J.
    Schuhmann, Wolfgang
    [J]. CURRENT OPINION IN ELECTROCHEMISTRY, 2021, 25
  • [7] [Anonymous], 1920, La Catalyse en chimie organique, DOI DOI 10.14375/NP.9782369430186
  • [8] Mesoporous platinum films from lyotropic liquid crystalline phases
    Attard, GS
    Bartlett, PN
    Coleman, NRB
    Elliott, JM
    Owen, JR
    Wang, JH
    [J]. SCIENCE, 1997, 278 (5339) : 838 - 840
  • [9] Perspective and Prospectus on Single-Entity Electrochemistry
    Baker, Lane A.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (46) : 15549 - 15559
  • [10] SCANNING ELECTROCHEMICAL MICROSCOPY - INTRODUCTION AND PRINCIPLES
    BARD, AJ
    FAN, FRF
    KWAK, J
    LEV, O
    [J]. ANALYTICAL CHEMISTRY, 1989, 61 (02) : 132 - 138