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Synchronous Surface-Interface and Crystal-Phase Engineered Multifaceted Hybrid Nanostructure of Fe-(1T)-VSe 2 Nanosheet and Fe-CoSe 2 Nanorods Doped with P for Rapid HER and OER, Kinetics.

Uday Narayan PanMani Ram KandelAnuj Kumar TomarNam Hoon KimJoong Hee Lee
Published in: Small (Weinheim an der Bergstrasse, Germany) (2023)
Two different nanostructures of two dissimilar highly-potent active electrocatalysts, P-dopped metallic-(1T)-Fe-VSe 2 (P,Fe-1T-VSe 2 ) nanosheet and P-dopped Fe-CoSe 2 (P,Fe-CoSe 2 ) nanorods are hybridized and integrated into a single heterostructure (P,Fe-(VCo)Se 2 ) on Ni-foam for high-performance water splitting (WS). The catalytic efficiency of VSe 2 nanosheets is first enhanced by enriching metallic (1T)-phase, then forming bimetallic Fe-V selenide, and finally by P-doping. Similarly, the catalytic efficiency of CoSe 2 nanorods is boosted by first fabricating Fe-Co bimetallic selenide and then P-doping. To develop super-efficient electrocatalysts for WS, two individual electrocatalysts P,Fe-1T-VSe 2 nanosheet and P,Fe-CoSe 2 are hybridized and integrated to form a heterostructure (P,Fe-(VCo)Se 2 ). Metallic (1T)-phase of transition metal dichalcogenides has much higher conductivity than the 2H-phase, while bimetallization and P-doping activate basal planes, develop various active components, and form heterostructures that develop a synergistic interfacial effect, all of which, significantly boost the catalytic efficacy of the P,Fe-(VCo)Se 2 . P,Fe-(VCo)Se 2 shows excellent performance requiring very low overpotential (η HER = 50 mV@10 mAcm -2 and η OER = 230 mV@20 mAcm -2 ). P,Fe-(VCo)Se 2 (+, -) device requires a cell potential of 1.48 V to reach 10 mA cm -2 for overall WS.
Keyphrases
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