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May 10, 2026Nanomaterials1 citationsOpen Access

Advanced Development of Diverse Photovoltaic-Driven Water Electrolysis for Hydrogen Production: A Review on Coupling Mechanisms, Technological Evolution and Economic Analysis

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YYYifei YuSSSuni ShiZPZhiyi Peng

Key Points

  • To examine the integration of various photovoltaic technologies with water electrolysis for hydrogen production and address associated challenges.
  • Systematic review of diverse photovoltaic technologies and electrolysis systems.
  • Analysis of coupling mechanisms in light-electricity-hydrogen energy fields.
  • Exploration of challenges like PV output mismatch and catalyst optimization.
  • Identified critical scientific challenges such as lifecycle stability and optimization of high-cost catalysts.
  • Highlighted the importance of PV spectral response matching and electrolyzer kinetic adaptation.
  • Outlined future advancements in efficiency and economic feasibility using AI-driven approaches.

Abstract

In the context of global carbon neutrality, photovoltaic (PV)-coupled water electrolysis has emerged as a pivotal technological route for large-scale green hydrogen production. This review systematically explores the integration of diverse PV technologies (e.g., crystalline silicon, perovskite tandems, and concentrated PV) with various electrolysis systems (such as AEL, PEMEL, and AEMEL). We analyze the coupling mechanisms across light–electricity–hydrogen multi-energy fields from three dimensions: PV spectral response matching, electrolyzer kinetic adaptation, and innovative system topologies. Furthermore, this paper highlights critical scientific challenges, including the mismatch between fluctuating PV output and steady-state electrolysis, lifecycle stability under extreme conditions, and the optimization of high-cost catalysts. By incorporating cutting-edge approaches like AI-driven predictions, digital twins, and photothermal synergies, we outline future trajectories for enhancing system efficiency and economic viability. Ultimately, this review provides theoretical guidance to advance the commercialization of diverse, stable, and low-cost PV-driven green hydrogen production systems.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/6a002126c8f74e3340f9c098https://doi.org/10.3390/nano16100579
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