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Highly Nanoporous Nickel Foam as Current Collectors in 3D All-Solid-State Microsupercapacitors
Bayu Satriya Wardhana1,2, Kuan-Wen Wang1, Wei-Hsuan Hung1,3
1Institute of Materials Science and Engineering, National Central University, Taoyuan City 32001, Taiwan, ROC.
Researchers developed a novel nanoporous electrode for microsupercapacitors (MSCs). This enhanced current collector significantly boosts energy storage performance, offering a 25x improvement over commercial options.
Area of Science:
- Materials Science and Engineering
- Electrochemistry
- Nanotechnology
Background:
- Microsupercapacitors (MSCs) require advanced current collectors to enhance energy storage capacity.
- Existing commercial Ni foams have limitations in specific surface area and active material deposition.
- Nanoporous structures offer potential for significantly improved electrode performance.
Purpose of the Study:
- To develop a streamlined method for producing a highly nanoporous current collector for MSCs.
- To enhance the specific surface area and active material loading of Ni-based electrodes.
- To evaluate the electrochemical performance of the novel electrode in both liquid and solid-state MSCs.
Main Methods:
- Patterning commercial Ni foams into interdigitated structures using laser cutting.
- Infusing Ni foams with NiO nanopowders via dip coating, sintering, and H2 atmosphere reduction.
- Growing MnO2 on the NiO-infused Ni foam through a redox reaction to create a 3D nanoporous structure.
Main Results:
- The fabricated 3D nanoporous electrode exhibits porosity in the 200-600 nm range, increasing specific surface area by 30 times.
- Liquid electrolyte evaluations show an areal capacity of 19.3 F/cm², 95% capacitance retention at 5 mA/cm², and 671 μW h/cm² energy density (25x greater than commercial Ni foams).
- Solid-state MSCs using the electrode achieve 7.22 F/cm² areal capacity and 263.9 μW h/cm² energy density.
Conclusions:
- The developed streamlined method effectively produces highly nanoporous current collectors with significantly enhanced electrochemical properties.
- The 3D nanoporous electrode architecture dramatically improves specific surface area and active material deposition for superior energy storage.
- This advanced electrode material is exceptionally suitable for high-performance microsupercapacitor applications, both in liquid and solid-state configurations.
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