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March 21, 2026Journal of CO2 Utilization8 citationsOpen Access

Photocatalytic CO₂ reduction: How promising is the technological application?

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ABAibol BaratovZKZhengisbek KuspanovNINurlan Idrissov

Key Points

  • The aim is to evaluate the potential of photocatalytic CO₂ reduction as a practical technology for converting solar energy into chemical fuels.
  • Reviewed advancements in photocatalyst design and architectures.
  • Assessed pilot-scale demonstrations of CO₂ reduction systems.
  • Compared photocatalysis with electro-, thermo-, plasma-, and biocatalytic pathways.
  • Evaluated techno-economic indicators related to CO₂-derived products.
  • Advancements include evolution from simple oxides to complex Z-scheme systems.
  • Pilot studies indicate feasibility in photoreactor systems.
  • Identified key challenges like low efficiency and scale-up barriers.
  • Emphasized the need for scientific and policy milestones to enhance commercialization.

Abstract

Photocatalytic CO₂ reduction is considered a theoretically ideal yet practically demanding approach for converting solar energy into chemical fuels under ambient conditions. Over recent decades, notable progress has been achieved in photocatalyst design — from simple oxides to complex Z-scheme systems, porous architectures, and dual-cocatalyst configurations. Nevertheless, a central question remains: Can this strategy evolve from a laboratory concept into an industrially viable technology? This review critically assesses the current status of photocatalytic CO₂ reduction, highlighting recent advances in material development and outlining persistent challenges, including low solar-to-chemical efficiency, limited selectivity, insufficient visible-light absorption, and scale-up barriers. Selected pilot-scale demonstrations are examined, offering insights into system-level design and emerging performance benchmarks. A comparative evaluation of electro-, thermo-, plasma-, and bio-catalytic pathways is also provided, positioning photocatalysis within the broader CO₂ utilization landscape in terms of energy input, carbon footprint, and techno-economic feasibility. Particular emphasis is placed on techno-economic indicators and the commercial prospects of CO₂-derived products. The review concludes by identifying key scientific and policy milestones required to advance photocatalytic CO₂ reduction toward a meaningful role in a circular, low-carbon economy. • Evolution from simple oxides to Z-scheme and dual-cocatalyst photocatalysts. • Pilot-scale studies show feasibility of CO₂ reduction in photoreactor systems. • Comparison with electro-, thermo-, plasma-, and biocatalytic CO₂ pathways. • Techno-economic barriers and commercial potential of CO₂ photocatalysis assessed.

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Cite This Study

Baratov et al. (2026) studied this question.

synapsesocial.com/papers/69be356f6e48c4981c673b73https://doi.org/10.1016/j.jcou.2026.103398
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