Journal of Power Sources· 2026Q1
Gelecek Nesil Giyilebilir Elektronikler İçin Lazerle Oluşturulmuş Grafen Üzerinde Yerinde Büyütülen NixSy-CuS Nano Kürelerin Sinerjistik Çift Potansiyelli Psödokapasitansı
Synergistic dual-potential pseudocapacitance of in situ grown NixSy-CuS nanospheres on laser-induced graphene for next-generation wearable electronics
- 0atıf
- Q1SCImago
- 2026yıl
Kısa özet
Lazerle oluşturulmuş grafen (LIG) üzerine doğrudan büyütülen yeni bir NiₓSy-CuS nano küre yapısı, 75.4 mF cm⁻² (pozitif potansiyel) ve 163.2 mF cm⁻² (negatif potansiyel) gibi yüksek özgül kapasitanslar elde ederek giyilebilir elektronikler için kararlı esnek süperkapasitörleri mümkün kılıyor.
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Özet (abstract)
Wearable electronic textiles are promising platforms for integrating flexible energy-storage devices into daily life. In this study, a high-performance nickel and copper sulfides nanostructure was directly grown on laser-induced graphene (LIG) through a simple binder-free process for flexible interdigitated micro-supercapacitor (FIMS) and flexible asymmetric sandwich supercapacitor (FASS) applications. The porous LIG network enabled in situ growth of Ni x S y -CuS nanospheres without hydrothermal treatment, providing abundant electroactive sites and rapid charge transport. Electrochemical evaluation showed excellent performance in both positive and negative potential windows, where NiS and Ni 3 S 2 enhanced redox activity at positive potentials while CuS improved electrochemical behavior at negative potentials. As a result, the Ni x S y -CuS@LIG electrode achieved high specific capacitances of 75.4 and 163.2 mF cm −2 in positive and negative regions, respectively. Dunn's and Trasatti's analyses confirmed dominant pseudocapacitive charge-storage behavior. The fabricated FIMS device exhibited long-term stability, retaining 86.4% of its initial capacitance with 95.92% coulombic efficiency after 3000 cycles at 0.6 mA cm −2 , and successfully powered LEDs and small electronic devices. Furthermore, the FASS device delivered an energy density of 7.3 mWh cm −2 and a power density of 303.4 mW cm −2 , demonstrating strong potential for wearable electronics.
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