High-performance cauliflower-like Er2O3/NiO nanocomposite derived from Er-Ni-MOF for energy conversion and storage applications

With the growing urgency to address environmental degradation, the demand for clean energy has intensified the need for renewable energy production and high-performance energy storage systems. Current challenges in these fields include developing cost-effective and scalable materials that simultaneo...

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Veröffentlicht in:Journal of energy storage 2025-02, Vol.108, p.115222, Article 115222
Hauptverfasser: Sonadia, Miran, Waheed, Iqbal, Zoya, Shah, Maryam, Mustafa, Ghulam, Mushtaq, Muhammad Umair, Ul-Hamid, Anwar, Azad, Fahad
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Sprache:eng
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Zusammenfassung:With the growing urgency to address environmental degradation, the demand for clean energy has intensified the need for renewable energy production and high-performance energy storage systems. Current challenges in these fields include developing cost-effective and scalable materials that simultaneously enhance hydrogen production and serve as a supercapacitor electrode material. In this work, we have synthesized Er-Ni-MOF derived Er2O3/NiO nanocomposite showing multifunctional electrocatalytic properties with superior performance. The synthesized nanocomposite showed an enhancement of surface area along with improved conductivity. Er2O3/NiO nanocomposite showed a significantly low overpotential of 160 mV to reach a current density of 10 mA cm−2 with fast reaction kinetics, and long-term durability. Moreover, Er2O3/NiO nanocomposite-based supercapacitor electrode with a specific capacitance (Cs) of 2139 F g−1 showcased over two folds higher energy storage capacity compared to precursor Er-Ni-MOF and six times greater than Ni-MOF at a current density of 1 A g−1. The fabricated electrode presented an excellent cyclic stability of ∼83 % for 8000 cycles. An asymmetric supercapacitor device was constructed using the MOF-derived Er2O3/NiO nanocomposite, as the positive electrode and activated carbon as the negative electrode material. The device exhibited a specific capacitance of 67.5 F g−1 at a current density of 1 A g−1, with an impressive capacity retention of 97 % over 15,000 cycles. These findings underscore the significance of MOF-derived nanocomposites and their potential for sustainable energy production and practical energy storage applications. •Er-Ni-MOF-derived Er2O3/NiO shows promise for sustainable energy applications.•Demonstrates low overpotential, fast kinetics, and excellent durability for HER.•Exhibits remarkable capacitance and stability as supercapacitor electrode material.•Er2O3/NiO//AC supercapacitor device showed 67.5 F g−1 capacitance at 1 A/g.•The device showed impressive stability with 97 % capacity retention for 15,000 cycles.
ISSN:2352-152X
DOI:10.1016/j.est.2024.115222