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March 18, 2026Nano Research0 citationsOpen Access

Upcycling phosphine tail gas into efficient Ni 2 P/Ni 5 P 4 heterostructure electrocatalysts for hydrogen evolution

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FWFang WangHYHaocheng YangYCYu Cheng

Key Points

  • The study aims to convert hazardous phosphine tail gas into valuable electrocatalysts for sustainable hydrogen production.
  • Utilized spherical NiO as a scavenger for phosphine gas.
  • Achieved 99.2% efficiency in phosphine removal.
  • Transformed NiO into Ni2P/Ni5P4 heterostructure through controlled phosphidation kinetics.
  • Conducted density functional theory calculations to evaluate catalyst performance.
  • Developed a Ni2P/Ni5P4 heterostructure from spent NiO with excellent HER performance.
  • Achieved an overpotential of only 158 mV to reach 10 mA·cm⁻².
  • Obtained a low Tafel slope of 86 mV·dec⁻¹, indicating efficient hydrogen production.

Abstract

Converting hazardous industrial waste into high-value energy materials represents a sustainable closed-loop strategy for environmental management. Herein, we report a "turn-waste-into-treasure" approach where spherical NiO serves as a highly efficient scavenger for toxic Phosphine (PH₃) tail gas and is subsequently transformed in situ into a robust electrocatalyst. The NiO precursor achieves a superior PH₃ removal efficiency of 99.2%. By precisely regulating the phosphidation kinetics driven by the captured PH3, a unique Ni2P/Ni5P4 heterostructure is constructed from the spent adsorbent. The resulting catalyst exhibits exceptional alkaline hydrogen evolution reaction (HER) performance, requiring an overpotential of only 158 mV to reach 10 mA·cm⁻² with a low Tafel slope of 86 mV·dec⁻¹. Density functional theory (DFT) calculations reveal that the interfacial built-in electric field and modulated electronic structure are critical: they not only optimize the Gibbs free energy of hydrogen adsorption but also thermodynamically promote water dissociation by enhancing the Lewis acidity of surface sites. This work demonstrates a scalable protocol for the dual-functional resource utilization of phosphorus waste, bridging the gap between industrial pollution control and green hydrogen production.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69ba422e4e9516ffd37a226chttps://doi.org/10.26599/nr.2026.94908623
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Also Consider

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  3. 3Ruthenium-doped Ni5P4 for hydrogen production via water electrolysis2024 · 1 citations
  4. 4Tailoring the Electronic Structure of Nickel With Ruthenium Nanocluster Arrays by Phosphorus Modification for Ampere‐Level Hydrogen Production2025 · 8 citations
  5. 5Tailoring the Electronic Structure of Nickel With Ruthenium Nanocluster Arrays by Phosphorus Modification for Ampere‐Level Hydrogen Production2025