TY - JOUR
T1 - Scalable Electrostatic-Induced Control of Marangoni Deposition of Uniform 3D-Porous PEDOT Electrodes for Ultrafast AC-Line Filtering and High Areal/Volumetric Capacitance
AU - Li, Liuyan
AU - Yang, Shuwen
AU - Xia, Kailai
AU - Chen, Meixin
AU - Zhuang, Yuhang
AU - Zhu, Wenqi
AU - Huang, Qinzhui
AU - Wang, Yanfang
AU - Fan, Xuanhe
AU - Zhao, Wenqi
AU - Lu, Zhixing
AU - Wen, Yeye
AU - Wu, Mingmao
AU - Zou, Zhigang
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025
Y1 - 2025
N2 - With the miniaturization of integrated circuits driving increased demand for high-frequency alternating current (AC)-line filtering capacitors, portable electrochemical capacitors (ECs) must reconcile two persistent challenges: i) the inherent contradiction in synergistic enhancement between areal capacitance (CA) and volumetric capacitance (CV) at the condition of high frequency response, and ii) developing scalable fabrication methods. To address these issues, an electrostatic-induced Marangoni assembly process is introduced, which enables large-area, rapid deposition of poly(3,4-ethylenedioxythiophene) (PEDOT) films with a uniform, 3D fibrous porous network. By pre-treating the PEDOT:poly(styrenesulfonate) (PSS) ink with a polar solvent and applying an electrostatic field, Marangoni flows align microdroplets into a continuously interconnected 3D architecture. This structure not only facilitates ultrafast ion transport but also provides abundant storage sites, yielding a sultaneous enhancement in CA (1.72 mF cm⁻2) and CV (13.2 F cm⁻3), as well as an exceptional phase angle of −82.9° at 120 Hz. These metrics surpass those of most reported carbon- and PEDOT-based filtering capacitors. Moreover, the method accommodates high-loading of pseudocapacitive materials, demonstrating its versatility for composite electrode engineering. Subsequent AC-line filtering tests confirm the practical applicability of these electrodes, offering a scalable route to miniaturized capacitors with synergistically optimized CA and CV.
AB - With the miniaturization of integrated circuits driving increased demand for high-frequency alternating current (AC)-line filtering capacitors, portable electrochemical capacitors (ECs) must reconcile two persistent challenges: i) the inherent contradiction in synergistic enhancement between areal capacitance (CA) and volumetric capacitance (CV) at the condition of high frequency response, and ii) developing scalable fabrication methods. To address these issues, an electrostatic-induced Marangoni assembly process is introduced, which enables large-area, rapid deposition of poly(3,4-ethylenedioxythiophene) (PEDOT) films with a uniform, 3D fibrous porous network. By pre-treating the PEDOT:poly(styrenesulfonate) (PSS) ink with a polar solvent and applying an electrostatic field, Marangoni flows align microdroplets into a continuously interconnected 3D architecture. This structure not only facilitates ultrafast ion transport but also provides abundant storage sites, yielding a sultaneous enhancement in CA (1.72 mF cm⁻2) and CV (13.2 F cm⁻3), as well as an exceptional phase angle of −82.9° at 120 Hz. These metrics surpass those of most reported carbon- and PEDOT-based filtering capacitors. Moreover, the method accommodates high-loading of pseudocapacitive materials, demonstrating its versatility for composite electrode engineering. Subsequent AC-line filtering tests confirm the practical applicability of these electrodes, offering a scalable route to miniaturized capacitors with synergistically optimized CA and CV.
KW - AC-line filtering
KW - PEDOT
KW - electrostatic spraying
KW - marangoni effect
KW - supercapaictor
UR - http://www.scopus.com/pages/publications/105008445203
U2 - 10.1002/adfm.202510499
DO - 10.1002/adfm.202510499
M3 - Article
AN - SCOPUS:105008445203
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -