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具有负载于黄麻杆衍生活性炭纳米片上的镍钴层状双氢氧化物纳米花的先进高能全固态混合超级电容器。

Advanced High-Energy All-Solid-State Hybrid Supercapacitor with Nickel-Cobalt-Layered Double Hydroxide Nanoflowers Supported on Jute Stick-Derived Activated Carbon Nanosheets.

作者信息

Shah Syed Shaheen, Aziz Md Abdul, Ali Muhammad, Hakeem Abbas Saeed, Yamani Zain H

机构信息

Physics Department, King Fahd University of Petroleum & Minerals, KFUPM Box 5047, Dhahran, 31261, Saudi Arabia.

Interdisciplinary Research Center for Hydrogen and Energy Storage (IRC-HES), King Fahd University of Petroleum & Minerals, KFUPM Box 5040, Dhahran, 31261, Saudi Arabia.

出版信息

Small. 2024 May;20(22):e2306665. doi: 10.1002/smll.202306665. Epub 2023 Dec 27.

DOI:10.1002/smll.202306665
PMID:38150613
Abstract

Developing efficient, lightweight, and durable all-solid-state supercapacitors is crucial for future energy storage systems. The study focuses on optimizing electrode materials to achieve high capacitance and stability. This study introduces a novel two-step pyrolysis process to synthesize activated carbon nanosheets from jute sticks (JAC), resulting in an optimized JAC-2 material with a high yield (≈24%) and specific surface area (≈2600 m g). Furthermore, an innovative in situ synthesis approach is employed to synthesize hybrid nanocomposites (NiCoLDH-1@JAC-2) by integrating JAC nanosheets with nickel-cobalt-layered double hydroxide nanoflowers (NiCoLDH). These nanocomposites serve as positive electrode materials and JAC-2 as the negative electrode material in all-solid-state asymmetric hybrid supercapacitors (HSCs), exhibiting remarkable performance metrics. The HSCs achieve a specific capacitance of 750 F g, a specific capacity of 209 mAh g (at 0.5 A g), and an energy density of 100 Wh kg (at 250 W kg) using PVA/KOH solid electrolyte, while maintaining outstanding cyclic stability. Importantly, a density functional theory framework is utilized to validate the experimental findings, underscoring the potential of this novel approach for enhancing HSC performance and enabling the large-scale production of transition metal-based layered double hydroxides.

摘要

开发高效、轻质且耐用的全固态超级电容器对于未来的储能系统至关重要。该研究聚焦于优化电极材料以实现高电容和稳定性。本研究引入了一种新颖的两步热解工艺,以黄麻杆为原料合成活性炭纳米片(JAC),从而得到了具有高产率(约24%)和比表面积(约2600 m²/g)的优化JAC-2材料。此外,采用了一种创新的原位合成方法,通过将JAC纳米片与镍钴层状双氢氧化物纳米花(NiCoLDH)整合来合成混合纳米复合材料(NiCoLDH-1@JAC-2)。这些纳米复合材料在全固态非对称混合超级电容器(HSC)中用作正极材料,JAC-2用作负极材料,展现出卓越的性能指标。使用PVA/KOH固体电解质时,该HSC的比电容为750 F/g,比容量为209 mAh/g(在0.5 A/g时),能量密度为100 Wh/kg(在250 W/kg时),同时保持出色的循环稳定性。重要的是,利用密度泛函理论框架验证了实验结果,强调了这种新方法在提高HSC性能以及实现基于过渡金属的层状双氢氧化物大规模生产方面的潜力。

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