AI Article Synopsis

  • Photoredox catalysis shows high efficiency, often exceeding 100% quantum yields, meaning one photon can produce more than 100 molecules through chain processes.
  • The text explores how catalytic chains, particularly through hydrogen atom transfer (HAT) and single electron transfer (SET), are crucial for understanding this efficiency and the thermodynamic forces behind them.
  • It concludes by emphasizing the role of polar and radical processes, including the phenomenon of redox upconversion, which helps activate hidden catalytic pathways and supports efficient bond formation.

Article Abstract

Although photoredox catalysis is complex from a mechanistic point of view, it is also often surprisingly efficient. In fact, the quantum efficiency of a puzzlingly large portion of photoredox reactions exceeds 100% (i.e., the measured quantum yields (QYs) are >1). Hence, these photoredox reactions can be than perfect with respect to photon utilization. In several documented cases, a single absorbed photon can lead to the formation of >100 molecules of the product, behavior known to originate from chain processes. In this Perspective, we explore the underlying reasons for this efficiency, identify the nature of common catalytic chains, and highlight the differences between HAT and SET chains. Our goal is to show why chains are important in photoredox catalysis and where the thermodynamic driving force that sustains the SET catalytic cycles comes from. We demonstrate how the interplay of polar and radical processes can activate hidden catalytic pathways mediated by electron and hole transfer (i.e., electron and hole catalysis). Furthermore, we illustrate how the phenomenon of redox upconversion serves as a thermodynamic precondition for electron and hole catalysis. After discussing representative mechanistic puzzles, we analyze the most common bond forming steps, where redox upconversion frequently occurs (and issometimes unavoidable). In particular, we highlight the importance of 2-center-3-electron bonds as a recurring motif that allows a rational chemical approach to the design of redox upconversion processes.

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Source
http://dx.doi.org/10.1021/jacs.4c10422DOI Listing

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