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Small· 2026Q1

In Situ‐Grown Graphdiyne Interfaces on Cu‐Retained CoCuFe Phosphide‐Like Octahedra for Overall Water Splitting

Nahyun Lee, Sangwoo Kim, Jinhyun Park, Pei‐Chen Su et al.

Short summary

A novel graphdiyne (GDY)-coupled CoCuFe phosphide-like heterostructure, synthesized via a Cu-retention strategy, achieves low overpotentials of 211 mV (OER) and 88.5 mV (HER) at 10 mA cm⁻² in 1.0 M KOH, and maintains stability for 100 hours in a symmetric electrolyzer.

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Key points

  • A Cu-retention strategy was used to synthesize a GDY-coupled CoCuFe phosphide-like heterostructure.
  • The catalyst achieves low overpotentials: 211 mV for OER and 88.5 mV for HER at 10 mA cm⁻² in 1.0 M KOH.
  • The material functions as a stable bifunctional electrocatalyst for overall water splitting, operating for 100 hours at 10 mA cm⁻² with a cell voltage of 1.45 V.
  • Interfacial charge redistribution and Cu-adjacent P sites are identified as key factors for improved performance.

AI-generated from the title and abstract; the full text is not read.

Abstract

ABSTRACT A Cu‐retention‐assisted precursor‐conversion strategy is developed to construct a graphdiyne (GDY)‐coupled CoCuFe phosphide‐like heterostructure for alkaline water electrolysis. Octahedral Cu 2 O directs the particle morphology and serves as a Cu source, whereas the CoFe Prussian blue analogue (PBA) shell supplies the Co and Fe species required to form the multimetal phosphide‐like framework. In situ growth of GDY preserves the precursor‐derived architecture and establishes interfacial contact between the π‐conjugated GDY layer and the phosphide‐like domain. The resulting GDY@P‐CoCuFe requires overpotentials of 211 and 88.5 mV to reach 10 mA cm −2 for the oxygen and hydrogen evolution reactions, respectively, in 1.0 M KOH. When employed as both the anode and cathode in a symmetric electrolyzer, GDY@P‐CoCuFe delivers 10 mA cm −2 at a cell voltage of 1.45 V and maintains stable operation for 100 h. Spectroscopic analyses and density functional theory calculations suggest that interfacial charge redistribution and the formation of Cu‐adjacent P sites contribute to favorable hydrogen adsorption. Post‐operation characterization further reveals partial oxyhydroxide‐like surface reconstruction during OER, while the underlying phosphide‐like framework and GDY structure remain largely preserved. These findings demonstrate that combining controlled Cu retention with direct GDY interfacial growth provides an effective route for developing efficient and durable bifunctional electrocatalysts.

The authors' abstract, as published at the source. Small, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy