Enhanced photocatalytic hydrogen evolution by polyiodide-boosted electron transport and Pt–Ag alloy active sites in conductive polymer-based core–shell photocatalysts

Abstract

The photocatalytic hydrogen evolution reaction (HER) represents a promising route for sustainable solar-to-hydrogen conversion; however, practical implementation is often constrained by inefficient charge transport and high noble-metal requirements. Here, we report a core–shell photocatalyst, Fe3O4@PPy@Pt/Ag@I, designed with a sustainability-oriented strategy that simultaneously addresses three critical challenges: resource-efficient use of noble metals, enhanced charge-transport efficiency, and operational recyclability. The in situ formation of Pt–Ag alloy nanodots reduces reliance on pure Pt while retaining high catalytic activity, improving noble-metal utilization efficiency. Polyiodide species (I3 and I5) embedded within the polypyrrole (PPy) matrix facilitate efficient electron transport. The synergistic combination of polyiodide-assisted charge transfer and Pt–Ag alloy-mediated proton reduction enhances charge separation, prolongs carrier lifetimes, and accelerates HER kinetics, resulting in a 6.2-fold increase in the hydrogen-evolution rate and substantially improved Pt mass activity relative to Fe3O4@PPy@Pt. In addition, the magnetic Fe3O4 core enables facile recovery and reuse of the catalyst, demonstrating a cost-effective and sustainability-driven approach for conductive polymer-based photocatalytic hydrogen production.

Graphical abstract: Enhanced photocatalytic hydrogen evolution by polyiodide-boosted electron transport and Pt–Ag alloy active sites in conductive polymer-based core–shell photocatalysts

Supplementary files

Article information

Article type
Paper
Submitted
30 Jun 2025
Accepted
01 Feb 2026
First published
13 Feb 2026
This article is Open Access
Creative Commons BY license

RSC Sustainability, 2026, Advance Article

Enhanced photocatalytic hydrogen evolution by polyiodide-boosted electron transport and Pt–Ag alloy active sites in conductive polymer-based core–shell photocatalysts

W. Zhang, C. Jiang, W. Tao, Y. Wang, H. Guan and L. Hao, RSC Sustainability, 2026, Advance Article , DOI: 10.1039/D5SU00533G

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