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April 10, 2026Discover Nano0 citationsOpen Access

Photoelectrochemical hydrogen production: a comparative and bibliometric analysis of metal-organic frameworks and perovskites

BBBachir Yaou BalarabeMMManka MarycleophaIAIrédon Adjama

Key Points

  • This research aims to analyze the performance and research trends of metal-organic frameworks and perovskites in photoelectrochemical hydrogen production.
  • Conducted a bibliometric analysis from 2015 to 2025 using VOSviewer and Biblioshiny.
  • Reviewed advancements in heterojunction design, band-gap engineering, and co-catalyst integration.
  • Compared the performance of perovskites and MOFs in PEC systems.
  • Perovskites demonstrate higher light-harvesting efficiency and greater publication impact than MOFs.
  • MOFs show superior catalytic versatility and capabilities in interfacial engineering.
  • Hybrid structures of MOFs and perovskites enhance charge separation and solar-to-hydrogen conversion efficiency.

Abstract

The global transition to sustainable energy has accelerated research into photoelectrochemical (PEC) hydrogen production, a promising technology for converting sunlight into storable chemical fuel. Among emerging materials, metal-organic frameworks (MOFs) and perovskites have shown great promise due to their adjustable band structures, catalytic versatility, and optoelectronic performance. This study provides a comparative and bibliometric analysis of MOFs and perovskite-based PEC systems, combining a review of recent advancements in heterojunction design, band-gap engineering, co-catalyst integration, and stability improvements with a quantitative overview of global research trends (2015-2025) using VOSviewer and Biblioshiny. Results show that perovskites lead in light-harvesting efficiency and publication impact, while MOFs excel in catalytic versatility and interfacial engineering. Hybrid MOF-perovskite structures exhibit synergistic effects that enhance charge separation, durability, and solar-to-hydrogen conversion efficiency. These findings emphasize the importance of combining both material types as a key step toward developing efficient, stable, and scalable PEC devices for green hydrogen production.

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Cite This Study

Balarabe et al. (2026) studied this question.

synapsesocial.com/papers/69d892886c1944d70ce03f5chttps://doi.org/10.1186/s11671-026-04525-6
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