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April 19, 2026Angewandte Chemie0 citations

A Low‐Temperature Solid Chemistry to Ru Clusterrene for Scalable Hydrogen Production

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RQRui QinTWTongshuai WangZYZhiyong Yu

Key Points

  • The aim is to develop a low-temperature method for synthesizing Ru clusterrene to improve hydrogen production efficiency.
  • Developed a thermal buffer-assisted calcination strategy at 250°C to synthesize Ru clusterrene.
  • Utilized NaCl as a buffer to prevent thermal runaway during synthesis.
  • Evaluated the performance of Ru clusterrene in anion exchange membrane water electrolysis.
  • Achieved a catalytic activity of 1.73 V@2 A cm ‒2 and 2.0 V@5.4 A cm ‒2.
  • Demonstrated exceptional stability for 1000 h at 2 A cm ‒2 (80°C) and 3500 h at 1 A cm ‒2 (50°C).
  • Showed a high stack performance of 3.6 V@1 A cm ‒2 for 2000 h@25 A.

Abstract

ABSTRACT Platinum‐group‐metal (PGM) nanomaterials are prominent in chemical and energy conversions. To date, their scalable manufacturing is confined by complex post‐processing or high‐temperature calcination (≥ 800°C), which are often required for conventional small‐sized nanoparticles. Herein, we have successfully developed a thermal buffer‐assisted low‐temperature (250°C) calcination strategy to create a sub‐nano Ru metallene called “Ru clusterrene” for anion exchange membrane water electrolysis (AEMWE). The rational use of NaCl is pivotal for successful synthesis, serving as a “buffer” to prevent thermal runaway. Consequently, the Ru clusterrene exhibits an ultra‐thin, fluid‐like structure that enables strong interaction with the substrate and ensures maximized active site exposure. Importantly, this strategy costs only US39. 42/g Ru, which is substantially lower than that of commercial Ru/C (Premetek, US1407. 50/g Ru). The Ru clusterrene delivers an outstanding activity of 1. 73 V@2 A cm ‒2 and 2. 0 V@5. 4 A cm ‒2, as well as an unprecedented stability for 1000 h at 2 A cm ‒2 (80°C) and 3500 h at 1 A cm ‒2 (50°C). More significantly, it exhibits a high stack performance in AEMWE (3. 6 V@1 A cm ‒2 and 2000 h@25 A), representing the most advanced level for AEMWE cathode catalyst.

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Cite This Study

Qin et al. (2026) studied this question.

synapsesocial.com/papers/69e473de010ef96374d8f9f7https://doi.org/10.1002/ange.5543861
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