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◆ ACS Applied Energy Materials2025-10-29· Degradation (telecommunications)

Unassisted PEC Water Splitting Using III–V Multijunction Photoabsorbers: Insights into the Degradation Mechanism

Diwakar Suresh Babu, Sven Schneider, Tim Rieth, Ian D. Sharp, Roel van de Krol

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide Despite the record solar-to-hydrogen efficiencies achieved by III–V semiconductor-based photoabsorbers, their lack of long-term stability during unassisted water splitting remains a major barrier to scalable solar hydrogen production. Here, we identify the degradation mechanism in Pt/TiO 2 /III–V photocathodes, with catalyst detachment emerging as the primary initiator. Using a combination of front-contact potential measurements, nanoscale imaging, and elemental analysis of both the surface and electrolyte composition, we demonstrate that Pt detachment increases the HER overpotential, driving TiO 2 into a thermodynamically unstable regime. This instability leads to TiO 2 dissolution, which subsequently exposes the photoabsorber to cathodic corrosion. The degradation proceeds in a sequential cascade, independent of whether the device operates in a two- or three-electrode configuration, highlighting the critical role of local catalyst potential in governing corrosion. Based on this adhesion-driven degradation mechanism, we propose practical interface engineering strategies to enhance durability and advance PEC devices toward real-world implementation.
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Unassisted PEC Water Splitting Using III–V Multijunction Photoabsorbers: Insights into the Degradation Mechanism — 科研速览 Science Skim