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JZ
Verified CAS / Academic Author2 Decoded Studies

Prof. Jiaqi Zhang

Science China Materials, Science China Press

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4239-2

Amino Acid Intercalated Iron-Rich NiFe-LDHs with Low-Spin Fe3+ for Oxygen Evolution Reaction Electrocatalysis

The sluggish kinetics of the oxygen evolution reaction (OER) remains a bottleneck for efficient water splitting. NiFe-layered double hydroxides (LDHs) are promising OER catalysts, but their performance is often limited by the high-spin state of Fe3+ and poor structural stability. Here, we report a series of amino acid-intercalated iron-rich NiFe-LDHs (AA-NiFe-LDHs) synthesized via a facile one-step coprecipitation method. Intercalation of glycine, alanine, and valine into the interlayer galleries expands the interlayer spacing and induces a partial transition of Fe3+ from high-spin to low-spin state, as confirmed by X-ray absorption spectroscopy and Mössbauer spectroscopy. The low-spin Fe3+ enhances the intrinsic catalytic activity by optimizing the adsorption energy of oxygen intermediates. Among the series, the glycine-intercalated sample (Gly-NiFe-LDH) exhibits the best OER performance in 1.0 M KOH, with an overpotential of 240 mV at 10 mA cm−2 and a Tafel slope of 38 mV dec−1, significantly outperforming the pristine NiFe-LDH (280 mV, 52 mV dec−1). Moreover, Gly-NiFe-LDH shows excellent long-term stability, retaining 95% of its initial activity after 24 h of chronopotentiometry at 10 mA cm−2. The intercalation also increases the electrochemically active surface area by 2.3-fold and reduces the charge transfer resistance from 12.5 Ω to 4.8 Ω. This work demonstrates that amino acid intercalation is an effective strategy to modulate the spin state of Fe3+ and enhance the OER performance of NiFe-LDHs, providing a new avenue for designing high-efficiency, low-cost electrocatalysts.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3287-0

Tantalum-Doped RuO2: From Laboratory Insights to Industrial-Grade PEM Catalysts

Proton exchange membrane water electrolysis (PEM-WE) is a pivotal technology for sustainable hydrogen production, yet its efficiency is constrained by the sluggish kinetics and instability of the oxygen evolution reaction (OER) under acidic conditions. RuO2, despite its high activity and lower cost relative to Ir-based catalysts, suffers from severe corrosion and dissolution, limiting its practical lifespan. This highlight examines the work by Zhang, Fu, Kwon, and coworkers, who combined single-crystal thin film studies with theoretical calculations to elucidate the corrosion mechanisms of Ru-based catalysts. By introducing tantalum via magnetron sputtering, they achieved significant improvements in both catalytic activity and structural stability. The Ta-doped RuO2 films exhibited suppressed formation of high-valence Ru phases and reduced changes in electrochemical surface area. Quantum mechanical calculations revealed that Ta preferentially occupies unsaturated coordination sites on Ru(100) and bridge sites on Ru(110), enhancing intrinsic stability. Kilogram-scale production of TaRuOx was realized through a sol-gel method, and large-scale photovoltaic water electrolysis tests demonstrated a cell voltage of 1.704 V at 1 A cm−2 with a degradation rate as low as 14 μV h−1. This work exemplifies a comprehensive innovation chain from mechanistic understanding to industrial validation, accelerating the deployment of green hydrogen production.