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Ni3S2 particle–embedded nanotubes as a high-performance electrocatalyst for overall water splitting

APL Materials [2024]
Zhu Pengcheng, Ye Li, Li Xiaolei, Wang Tianxing, Zhong Yao, Zhuang Lin
ABSTRACT

Hydrogen evolution reactions (HERs) and oxygen evolution reactions (OERs) are crucial for renewable energy production. Developing stable, cost-effective, and highly catalytic HER and OER electrocatalysts is paramount. In this study, a combination of hydrothermal synthesis and annealing was used to fabricate nickel sulfide (Ni 3 S 2 ) particle–embedded nanotubes supported on nickel (Ni) foam (Ni 3 S 2 PN/NF). The Ni 3 S 2 PN/NF structures featured a highly branched morphology with a large specific surface area, surpassing that of conventional Ni metal nanotubes. This design increased the number of reactive sites and enhanced the charge-transfer process. The Ni foam substrate expanded the contact area of Ni 3 S 2 , thereby improving conductivity and facilitating the adsorption/desorption of intermediates on the Ni 3 S 2 surface. Density functional theory calculations showed that the electronic structure of Ni 3 S 2 provides excellent conductivity. Moreover, the multi-branched structure and inherent conductivity of the NiS nanomaterials enhanced the Ni 3 S 2 PN/NF performance in 1M KOH, with overpotentials of 87 and 210 mV with iR compensation at 10 mA cm −2 for the HER and OER, respectively. The synthesized Ni 3 S 2 PN/NF also exhibited robust durability for 20 h. These results demonstrate that Ni 3 S 2 PN/NF is an excellent catalyst for both HER and OER.

MATERIALS

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