Concepedia

Publication | Open Access

Ultrathin, large area β-Ni(OH)2 crystalline nanosheet as bifunctional electrode material for charge storage and oxygen evolution reaction

17

Citations

66

References

2024

Year

Abstract

Bifunctional electrode materials are highly desirable for meeting increasing global energy demands and mitigating environmental impact. However, improving the atom-efficiency, scalability, and cost-effectiveness of storage systems, as well as optimizing conversion processes to enhance overall energy utilization and sustainability, remains a significant challenge for their application. Herein, we devised an optimized, facile, economic, and scalable synthesis of large area (cm<sup>2</sup>), ultrathin (∼2.9 ± 0.3 nm) electroactive nanosheet of β-Ni(OH)<sub>2,</sub> which acted as bifunctional electrode material for charge storage and oxygen evolution reaction (OER). The β-Ni(OH)<sub>2</sub> nanosheet electrode shows the volumetric capacity of 2.82 Ah.cm<sup>-3</sup>(0.82 µAh.cm<sup>-2</sup>) at the current density of 0.2 mA.cm<sup>-2</sup>. The device shows a high capacity of 820 mAh.cm<sup>-3</sup> with an ultrahigh volumetric energy density of 0.33 Wh.cm<sup>-3</sup> at 275.86 W.cm<sup>-3</sup> along with promising stability (30,000 cycles). Furthermore, the OER activity of ultrathin β-Ni(OH)<sub>2</sub> exhibits an overpotential (η<sub>10</sub>) of 308 mV and a Tafel value of 42 mV dec<sup>-1</sup> suggesting fast reaction kinetics. The mechanistic studies are enlightened through density functional theory (DFT), which reveals that additional electronic states near the Fermi level enhance activity for both capacitance and OER.

References

YearCitations

Page 1