Injection-Molded Carbon Fiber/Carbon Nanotube-Reinforced Polypropylene Composite Electrodes: Processing–Structure–Property Relationships and Aqueous Electrochemical Applications

Conductive polymer composites offer a scalable route to self-supporting electrochemical electrodes, but electrical performance must be balanced against processability at high filler loadings. Fifteen polypropylene (PP)-based carbon-filler formulations were melt-compounded and injection-molded, and their electrical resistivity and moldability were evaluated. PP/CF20/CNT20 was selected, exhibiting a mean volume resistivity of 0.1409 Ω·cm with complete mold filling, no visible surface defects, and good moldability. SEM and synchrotron X-ray CT revealed multiscale carbon-filler morphology and spatially heterogeneous CF organization. Perforated PP/CF20/CNT20 disks were assembled into a ten-electrode parallel stack. At 12 V, the voltage sweep reached approximately 7.1 A in 1 M KOH and 2.1 A in tap water; during 20 h fixed-voltage operation, currents stabilized at approximately 5.2–5.5 A and 2.1 A, respectively. In 1 M KOH, estimated H2 flow reached approximately 42.9 sccm at 7 A. Prolonged tap-water electrolysis produced Ca-dominated surface scale. At 12 V in 0.3 wt.% NaCl, no Escherichia coli colonies were detected under the applied plating conditions from 15 min onward. These results demonstrate the feasibility of injection-molded PP/CF/CNT composites as functional electrodes for aqueous electrochemical applications.

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Publication Details

Journal
Polymers
Published
2026-09-21
DOI
https://doi.org/10.3390/polym18182311
Primary Topic
Conducting polymers and applications
Type
article
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article

Injection-Molded Carbon Fiber/Carbon Nanotube-Reinforced Polypropylene Composite Electrodes: Processing–Structure–Property Relationships and Aqueous Electrochemical Applications

WonHyun Kwon, Dongwon Kim, Minseok Kim, Dongwon Lee et al.
Polymers
Conducting polymers and applications
article

Injection-Molded Carbon Fiber/Carbon Nanotube-Reinforced Polypropylene Composite Electrodes: Processing–Structure–Property Relationships and Aqueous Electrochemical Applications

WonHyun Kwon, Dongwon Kim, Minseok Kim, Dongwon Lee, Joon Young Kim, Jong Won Shin, Yeon Uk Jeong, Hyungwook Park, Daewoong Seo
article en

Abstract

Conductive polymer composites offer a scalable route to self-supporting electrochemical electrodes, but electrical performance must be balanced against processability at high filler loadings. Fifteen polypropylene (PP)-based carbon-filler formulations were melt-compounded and injection-molded, and their electrical resistivity and moldability were evaluated. PP/CF20/CNT20 was selected, exhibiting a mean volume resistivity of 0.1409 Ω·cm with complete mold filling, no visible surface defects, and good moldability. SEM and synchrotron X-ray CT revealed multiscale carbon-filler morphology and spatially heterogeneous CF organization. Perforated PP/CF20/CNT20 disks were assembled into a ten-electrode parallel stack. At 12 V, the voltage sweep reached approximately 7.1 A in 1 M KOH and 2.1 A in tap water; during 20 h fixed-voltage operation, currents stabilized at approximately 5.2–5.5 A and 2.1 A, respectively. In 1 M KOH, estimated H2 flow reached approximately 42.9 sccm at 7 A. Prolonged tap-water electrolysis produced Ca-dominated surface scale. At 12 V in 0.3 wt.% NaCl, no Escherichia coli colonies were detected under the applied plating conditions from 15 min onward. These results demonstrate the feasibility of injection-molded PP/CF/CNT composites as functional electrodes for aqueous electrochemical applications.

PolymersVol. 18(18)
Pohang University of Science and Technology (KR), Kyungpook National University (KR), Hanlim Pharm (South Korea) (KR), Korea Institute of Energy Research (KR), Pohang Accelerator Laboratory, Korea Institute of Science & Technology Information (KR)
Openalex Percentile: Top 23%
Conducting polymers and applications
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