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October 21, 2020Chemical Reviews1,372 citationsOpen Access

Single-Atom Catalysts across the Periodic Table

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SKSelina K. KaiserHarvard UniversityZCZupeng ChenNanjing Forestry UniversityDADario Faust AklETH Zurich

Key Points

  • To review the evolution and applications of single-atom catalysts (SACs) across the periodic table.
  • Compilation of examples and historical milestones in single-atom catalysis.
  • Examination of coordination structures and their properties with different host materials.
  • Discussion of applications in thermocatalysis, photocalysis, and electrocatalysis.
  • Single-atom heterogeneous catalysts exhibit unique reactivity that enhances catalytic performance.
  • Diverse elements beyond late transition metals show potential as effective SACs.
  • Trends in SAC design suggest growing applications in multistep and cascade reactions.

Abstract

Isolated atoms featuring unique reactivity are at the heart of enzymatic and homogeneous catalysts. In contrast, although the concept has long existed, single-atom heterogeneous catalysts (SACs) have only recently gained prominence. Host materials have similar functions to ligands in homogeneous catalysts, determining the stability, local environment, and electronic properties of isolated atoms and thus providing a platform for tailoring heterogeneous catalysts for targeted applications. Within just a decade, we have witnessed many examples of SACs both disrupting diverse fields of heterogeneous catalysis with their distinctive reactivity and substantially enriching our understanding of molecular processes on surfaces. To date, the term SAC mostly refers to late transition metal-based systems, but numerous examples exist in which isolated atoms of other elements play key catalytic roles. This review provides a compositional encyclopedia of SACs, celebrating the 10th anniversary of the introduction of this term. By defining single-atom catalysis in the broadest sense, we explore the full elemental diversity, joining different areas across the whole periodic table, and discussing historical milestones and recent developments. In particular, we examine the coordination structures and associated properties accessed through distinct single-atom-host combinations and relate them to their main applications in thermo-, electro-, and photocatalysis, revealing trends in element-specific evolution, host design, and uses. Finally, we highlight frontiers in the field, including multimetallic SACs, atom proximity control, and possible applications for multistep and cascade reactions, identifying challenges, and propose directions for future development in this flourishing field.

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Cite This Study

Kaiser et al. (2020) studied this question.

synapsesocial.com/papers/69d8336705ee2ba81dbef31ehttps://doi.org/10.1021/acs.chemrev.0c00576
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