4.8 Review

Rational Design of Single-Atom Site Electrocatalysts: From Theoretical Understandings to Practical Applications

Journal

ADVANCED MATERIALS
Volume 33, Issue 34, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202008151

Keywords

coordinated environment; electrocatalytic reactions; electronic structure; energy storage and conversions; single-atom site electrocatalysts

Funding

  1. National Key R&D Program of China [2018YFA0702003, 2016YFA0202801]
  2. National Natural Science Foundation of China [21890383, 21671117, 21871159]
  3. Science and Technology Key Project of Guangdong Province of China [2020B010188002]
  4. Beijing Municipal Science & Technology Commission [Z191100007219003]

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This paper systematically summarizes the fundamental understandings and intrinsic mechanisms underlying single-atom site electrocatalysts (SACs) and their electrocatalytic applications, including different preparation strategies and applications. It also discusses in depth the structure-performance relationship between SACs and electrocatalytic reactions, as well as enhancement mechanisms.
Atomically dispersed metal-based electrocatalysts have attracted increasing attention due to their nearly 100% atomic utilization and excellent catalytic performance. However, current fundamental comprehension and summaries to reveal the underlying relationship between single-atom site electrocatalysts (SACs) and corresponding catalytic application are rarely reported. Herein, the fundamental understandings and intrinsic mechanisms underlying SACs and corresponding electrocatalytic applications are systemically summarized. Different preparation strategies are presented to reveal the synthetic strategies with engineering the well-defined SACs on the basis of theoretical principle (size effect, metal-support interactions, electronic structure effect, and coordination environment effect). Then, an overview of the electrocatalytic applications is presented, including oxygen reduction reaction, hydrogen evolution reaction, oxygen evolution reaction, oxidation of small organic molecules, carbon dioxide reduction reaction, and nitrogen reduction reaction. The underlying structure-performance relationship between SACs and electrocatalytic reactions is also discussed in depth to expound the enhancement mechanisms. Finally, a summary is provided and a perspective supplied to demonstrate the current challenges and opportunities for rational designing, synthesizing, and modulating the advanced SACs toward electrocatalytic reactions.

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