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Synchronously anchoring of Ni12P5–Ni2P heterojunction nanoparticles in the 3D graphene composite bonded by N–P co-doped porous carbon as an efficient bifunctional catalyst for alkaline water splitting

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY [2024]
Shaopei Jia, Yanfeng Gao, Xiaofei Ma, Quan Huang, Qian Zhang, Xiaozhe Cheng, Qisong Li, Yan Zhang, Wei Cheng, Menghui Liu, Yunchao Mu
ABSTRACT

Designing and synthesizing cost-effective hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) catalysts is still the critical impetus for electrocatalytic alkaline water splitting for green hydrogen production. We present a novel strategy to synthesize Ni 12 P 5 –Ni 2 P heterojunction nanoparticles anchored in the three-dimensional (3D) graphene composite bonded by N–P co-doped porous carbon (NPC) through a single high-temperature carbonization. The as-obtained Ni 12 P 5 –Ni 2 P@NPC/3DG possessed an open pore structure, promoting electrolyte diffusion and enhance bubble release. The synergistic effect of the Ni 12 P 5 –Ni 2 P heterojunction with high intrinsic catalytic activity and the N–P co-doped carbon enabled the composite to exhibit high catalytic activity and stability for HER and OER. The optimized Ni 12 P 5 –Ni 2 P@NPC/3DG-0.5 exhibited overpotentials of 209.8/206.1 mV at 10 mA cm −2 and Tafel slopes of 67.9/92.3 mV dec −1 for HER/OER. Furthermore, when Ni 12 P 5 –Ni 2 P@NPC/3DG-0.5 was used as both the cathode and anode for overall water splitting, the cell only required a low voltage of 1.58 V to achieve a current density of 10 mA cm −2 , which was comparable to the catalytic activities of commercial noble metal catalysts. Meaningfully, this synthetic method provided a new strategy to improve electrocatalytic performance of Ni-based phosphides, extensively promoting the development of highly efficient electrocatalysts for alkaline overall water splitting.

MATERIALS

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