Remote Plasma Polymers of Iron (II) Phthalocyanine in Polyacrylonitrile-Derived Carbon Electrospun Fibers as Electrode for Supercapacitors

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Main Authors: Obrero, Jose M., Tafoya, Jorge PV, Thielke, Michael, Moreno-Martínez, G. P., Contreras-Bernal, Lidia, Sousa Jr, Jose Ferreira de, Sánchez-Valencia, Juan Ramón, Barranco, Angel, Sobrido, Ana B. Jorge
Format: Preprint
Published: 2026
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author Obrero, Jose M.
Tafoya, Jorge PV
Thielke, Michael
Moreno-Martínez, G. P.
Contreras-Bernal, Lidia
Sousa Jr, Jose Ferreira de
Sánchez-Valencia, Juan Ramón
Barranco, Angel
Sobrido, Ana B. Jorge
author_facet Obrero, Jose M.
Tafoya, Jorge PV
Thielke, Michael
Moreno-Martínez, G. P.
Contreras-Bernal, Lidia
Sousa Jr, Jose Ferreira de
Sánchez-Valencia, Juan Ramón
Barranco, Angel
Sobrido, Ana B. Jorge
contents Remote plasma-assisted vapour deposition under nitrogen (RPAVD-N2) is introduced as a single-step, solvent-free, room-temperature strategy to integrate iron(II) phthalocyanine (FePc) into carbon nanofiber (CNF) scaffolds for high-performance pseudocapacitive electrodes. In this process, CNFs are activated by low-energy N2 remote plasma and subsequently exposed to sublimated FePc, which undergoes controlled plasma polymerisation to form conformal, nitrogen-rich FePc-derived coatings while preserving Fe-N coordination. By tuning the plasma power, the degree of crosslinking, defect generation and molecular fragmentation is precisely controlled. Structural and spectroscopic analyses reveal progressive incorporation of amine, nitrile and oxygenated functionalities while maintaining the Fe-N coordination environment, with 30 W power providing the optimal balance between structural integrity and defect density. Plasma processing enhances the capacitance by nearly one order of magnitude compared to sublimated FePc films, underscoring the critical role of plasma-induced molecular integration. The FePc30W@CNFs electrode delivers 80.9 F/g at 0.25 A/g (areal capacitance 0.92 mF/cm2 at 2.9 mA/cm2), achieves 7.42 Wh/kg at 225 W/kg, and retains 86.5% of its initial capacitance after 6000 cycles. These results demonstrate that remote plasma polymerisation enables robust, high-rate and durable phthalocyanine-based electrodes, establishing RPAVD as a scalable platform for next-generation energy-storage materials.
format Preprint
id arxiv_https___arxiv_org_abs_2603_03900
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Remote Plasma Polymers of Iron (II) Phthalocyanine in Polyacrylonitrile-Derived Carbon Electrospun Fibers as Electrode for Supercapacitors
Obrero, Jose M.
Tafoya, Jorge PV
Thielke, Michael
Moreno-Martínez, G. P.
Contreras-Bernal, Lidia
Sousa Jr, Jose Ferreira de
Sánchez-Valencia, Juan Ramón
Barranco, Angel
Sobrido, Ana B. Jorge
Materials Science
Remote plasma-assisted vapour deposition under nitrogen (RPAVD-N2) is introduced as a single-step, solvent-free, room-temperature strategy to integrate iron(II) phthalocyanine (FePc) into carbon nanofiber (CNF) scaffolds for high-performance pseudocapacitive electrodes. In this process, CNFs are activated by low-energy N2 remote plasma and subsequently exposed to sublimated FePc, which undergoes controlled plasma polymerisation to form conformal, nitrogen-rich FePc-derived coatings while preserving Fe-N coordination. By tuning the plasma power, the degree of crosslinking, defect generation and molecular fragmentation is precisely controlled. Structural and spectroscopic analyses reveal progressive incorporation of amine, nitrile and oxygenated functionalities while maintaining the Fe-N coordination environment, with 30 W power providing the optimal balance between structural integrity and defect density. Plasma processing enhances the capacitance by nearly one order of magnitude compared to sublimated FePc films, underscoring the critical role of plasma-induced molecular integration. The FePc30W@CNFs electrode delivers 80.9 F/g at 0.25 A/g (areal capacitance 0.92 mF/cm2 at 2.9 mA/cm2), achieves 7.42 Wh/kg at 225 W/kg, and retains 86.5% of its initial capacitance after 6000 cycles. These results demonstrate that remote plasma polymerisation enables robust, high-rate and durable phthalocyanine-based electrodes, establishing RPAVD as a scalable platform for next-generation energy-storage materials.
title Remote Plasma Polymers of Iron (II) Phthalocyanine in Polyacrylonitrile-Derived Carbon Electrospun Fibers as Electrode for Supercapacitors
topic Materials Science
url https://arxiv.org/abs/2603.03900