One-pot synthesis of tungsten oxynitride/nitrogen-doped graphene with particle-sheet hybrid nanostructure as a highly effective binder-free supercapacitor electrode

IF 7.1 3区 材料科学 Q1 GREEN & SUSTAINABLE SCIENCE & TECHNOLOGY Materials Today Sustainability Pub Date : 2024-08-13 DOI:10.1016/j.mtsust.2024.100956
Narjess Sadat Kiafiroozkoohi , Shaban Reza Ghorbani , Hadi Arabi , Reza Ghanbari
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Abstract

High-performance nanoscale composites have achieved predominance as promising materials for supercapacitor applications. Graphene nanosheets decorated with transition metal oxynitride nanoparticles can be highly beneficial in improving supercapacitor properties. However, they are hardly retrieved, and their electrochemical characterizations and inherent charge-storage mechanisms have not been deeply investigated. Herein, tungsten oxynitride decorated nitrogen-doped graphene (WON-NG) is synthesized by a facile one-pot strategy in a particle-sheet hybrid nanostructure. The nanocomposite is grown directly on a nickel foam (NF) as the current collector through the synthesis process. X-ray photoelectron spectroscopy and TEM images have confirmed the particle-sheet hybrid nanostructure of the prepared nanocomposite with tungsten oxynitride nanoparticles and nitrogen-doped graphene nanosheet. The oxygen and nitrogen-based redox groups, which synergistically coexist in the hybrid network, inherently cooperate in the electrochemical activities of the nanocomposite. The electrochemical measurements show that the WON-NG|NF electrode can deliver a superior specific capacitance of 1079.4 F g−1 (4.6 F cm−2) at 1 A g−1 in 1 M KOH aqueous electrolyte. In-depth investigations suggest that the diffusive-controlled process governs the charge storage mechanism at all scan rates in the composite for the advantageous porous morphology. The assembled all-solid-state asymmetric supercapacitor device exhibits a high energy density of 81.6 Wh kg−1 and a power density of 5005.4 W kg−1. Also, the designed devise shows an excellent cycle life with 87.7% capacitance retention of 10,000 cycles.

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一锅合成具有颗粒-片状混合纳米结构的氧氮化钨/掺氮石墨烯作为高效无粘合剂超级电容器电极
高性能纳米级复合材料已成为超级电容器应用中最有前途的材料。用过渡金属氧化物纳米颗粒装饰的石墨烯纳米片在改善超级电容器性能方面大有裨益。然而,人们对它们的研究很少,对其电化学特性和内在电荷存储机制的研究也不深入。在此,我们采用简单的一锅法合成了氮掺杂石墨烯(WON-NG)。在合成过程中,纳米复合材料直接生长在作为集流器的泡沫镍(NF)上。X 射线光电子能谱和 TEM 图像证实了所制备的纳米复合材料具有氮氧化钨纳米颗粒和掺氮石墨烯纳米片的颗粒-片混合纳米结构。氧基和氮基氧化还原基团协同共存于混合网络中,在纳米复合材料的电化学活性中起着内在的协同作用。电化学测量结果表明,在 1 M KOH 水电解质中,WON-NG|NF 电极在 1 A g-1 电流条件下的比电容高达 1079.4 F g-1 (4.6 F cm-2)。深入研究表明,在复合材料的所有扫描速率下,扩散控制过程控制着电荷存储机制,从而形成了有利的多孔形态。组装后的全固态非对称超级电容器装置具有 81.6 Wh kg-1 的高能量密度和 5005.4 W kg-1 的功率密度。此外,所设计的装置还具有出色的循环寿命,10000 次循环的电容保持率高达 87.7%。
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来源期刊
CiteScore
5.80
自引率
6.40%
发文量
174
审稿时长
32 days
期刊介绍: Materials Today Sustainability is a multi-disciplinary journal covering all aspects of sustainability through materials science. With a rapidly increasing population with growing demands, materials science has emerged as a critical discipline toward protecting of the environment and ensuring the long term survival of future generations.
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