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源自细菌纤维素中原位生长的ZIF纳米笼的碳纳米结构用于交流滤波电化学电容器。

Carbon Nanostructures Derived from In Situ Grown ZIF Nanocages within Bacterial Cellulose for AC-Filtering Electrochemical Capacitors.

作者信息

Baranwal Rishav, Lin Xueyan, Qiao Yinxuan, Tan Haiyan, Goryll Michael, Fan Zhaoyang

机构信息

School for Engineering of Matter, Transport & Energy, Arizona State University, Tempe, AZ, 85281, USA.

School of Electrical, Computer and Energy Engineering, Arizona State University, Tempe, AZ, 85281, USA.

出版信息

Small. 2025 Feb;21(5):e2409110. doi: 10.1002/smll.202409110. Epub 2024 Dec 19.

DOI:10.1002/smll.202409110
PMID:39703018
Abstract

Electrochemical capacitors (ECs) offer superior specific capacitance for energy storage compared to traditional electrolytic capacitors but face limitations in alternating current (AC) filtering due to the need for balancing fast response and high capacitance. This study addresses these challenges by developing a freestanding nanostructured carbon electrode, derived from the rapid carbonization of bacterial cellulose (BC) embedded with zeolitic imidazolate framework 8 (ZIF-8) and in situ formed carbon nanotubes (CNTs). The electrode exhibits an exceptionally low area resistance of 9.8 mΩ cm and a high specific capacitance of 2.1 mF cm at 120 Hz, maintaining performance even at high frequencies. Stacking these electrodes enhances the capacitance to 5.3 mF cm, with the phase angle degrading to -74.4° at 120 Hz; however, they retain a phase angle below -45° up to ≈50 kHz, demonstrating excellent high-frequency performance. Furthermore, connecting three aqueous units in series as an integrated cell or utilizing organic electrolytes extends the voltage window to 2.4 V, enhancing their suitability for high-voltage applications. Ripple voltage analysis under various loads and frequencies indicates effective filtering capabilities, highlighting the potential of these nanostructured ECs for next-generation electronic applications.

摘要

与传统电解电容器相比,电化学电容器(ECs)在能量存储方面具有更高的比电容,但由于需要平衡快速响应和高电容,在交流(AC)滤波方面面临限制。本研究通过开发一种独立的纳米结构碳电极来应对这些挑战,该电极由嵌入沸石咪唑框架8(ZIF-8)和原位形成的碳纳米管(CNTs)的细菌纤维素(BC)快速碳化而成。该电极在120Hz时表现出极低的面积电阻9.8mΩ cm和2.1mF cm的高比电容,即使在高频下也能保持性能。堆叠这些电极可将电容提高到5.3mF cm,在120Hz时相角降至-74.4°;然而,它们在高达约50kHz时仍保持低于-45°的相角,展现出优异的高频性能。此外,将三个水性单元串联作为一个集成电池或使用有机电解质可将电压窗口扩展到2.4V,提高了它们在高压应用中的适用性。在各种负载和频率下的纹波电压分析表明其具有有效的滤波能力,突出了这些纳米结构的电化学电容器在下一代电子应用中的潜力。

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