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May 17, 2026Advanced Materials4 citationsOpen Access

Phase Boundary Engineering of Co 2 P‐CoP Branched Nanoparticles Enhances Cobalt Oxidation for Oxygen Evolution Electrocatalysis

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ZRZeno R. RamadhanSCSoshan CheongSSSankhadip Saha

Key Points

  • This research aims to explore the influence of phase boundaries in cobalt phosphide nanoparticles on catalytic performance for oxygen evolution reactions.
  • Synthesis of mixed-phase Co2P-CoP branched nanoparticles via controlled phosphidation of cobalt nanoparticles.
  • Evaluation of oxygen evolution reaction (OER) performance by measuring overpotential compared to commercial standards.
  • Density functional theory calculations to analyze electronic structures and charge stabilization at crystal phase boundaries.
  • The Co2P-CoP nanoparticles demonstrated an OER overpotential of 240 mV, which is 81 mV lower than the RuO2 standard.
  • These nanoparticles exhibited more than 3.5 times greater catalytic activity than pure-phase Co2P and CoP counterparts.
  • Charge stabilization on Co atoms at phase boundaries was identified as a key factor for enhanced OER activity.

Abstract

ABSTRACT The boundaries between two different crystal phases contain atoms with unique electronic structures and coordination numbers that can significantly influence catalytic performance. Cobalt phosphide adopts Co 2 P and CoP crystal phases, and both are active for oxygen evolution reaction (OER), which offers the opportunity to improve catalytic activity through the creation of phase boundaries. Here we show that mixed‐phase Co 2 P‐CoP branched nanoparticles enriched with boundaries between the Co 2 P and CoP phases can be synthesized by controlled phosphidation of Co branched nanoparticles. We found that the slow transformation from Co 2 P to CoP is key to achieving Co 2 P‐CoP phase boundaries. These nanoparticles exhibit excellent OER performance with an overpotential of 240 mV that is 81 mV lower than that of a commercial RuO 2 standard, and is >3.5 times more active than the Co 2 P and CoP pure‐phase counterparts. Density functional theory calculations reveal that there is a partially positive charge stabilized on the Co atoms at the crystal phase boundaries that leads to enhanced OER activity. These results highlight the effectiveness of utilizing crystal phase boundaries in nanomaterials as a strategy for enhancing catalytic performance.

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Cite This Study

Ramadhan et al. (2026) studied this question.

synapsesocial.com/papers/6a095b3e7880e6d24efe0fc1https://doi.org/10.1002/adma.202523118
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