Multifunctional Hybrid Rubber Nanocomposites With Enhanced Durability and Electrothermal Performance

ABSTRACT Rubber materials for demanding environments require high wear resistance, reliable frictional behavior, and stable performance over a wide temperature range. Electrothermal functionality is also required for temperature regulation in cold conditions. However, incorporating electrothermal capability without compromising mechanical and tribological performance remains challenging. In this work, pre‐intercalated molybdenum disulfide (MoS 2 ) nanosheets were synthesized and modified by substituting molybdenum atoms with isolated iron (Fe) atoms to tailor interfacial interactions. The engineered nanosheets were hybridized with conductive carbon nanotubes to establish a synergistic filler network within an acrylonitrile butadiene rubber/butadiene rubber blend. Structural and morphological analyses confirmed successful Fe substitution and improved compatibility of MoS 2 with the matrix. The resulting hybrid nanocomposite exhibited substantial mechanical reinforcement, with tensile strength and modulus increasing by 146% and 169%, respectively, relative to the neat blend. Enhanced wear resistance was accompanied by increased friction: weight loss decreased by nearly 25%, while the coefficient of friction increased by approximately 12%. Additionally, the hybrid system demonstrated effective electrothermal performance, heating from –40°C to a stable temperature of 29°C at only 5 V within 90 s. Overall, this multifunctional nanocomposite simultaneously enhances mechanical, tribological, and electrothermal performance, offering a promising strategy for durable and temperature‐responsive rubber materials.

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Publication Details

Journal
Macromolecular Rapid Communications
Published
2026-09-29
DOI
https://doi.org/10.1002/marc.70445
Primary Topic
Tribology and Wear Analysis
Type
article
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article

Multifunctional Hybrid Rubber Nanocomposites With Enhanced Durability and Electrothermal Performance

Samaneh Salkhi Khasraghi, Mohammad Arjmand, Seyed Rasoul Mousavi
Macromolecular Rapid Communications
Tribology and Wear Analysis
article

Multifunctional Hybrid Rubber Nanocomposites With Enhanced Durability and Electrothermal Performance

Samaneh Salkhi Khasraghi, Mohammad Arjmand, Seyed Rasoul Mousavi
article en

Abstract

ABSTRACT Rubber materials for demanding environments require high wear resistance, reliable frictional behavior, and stable performance over a wide temperature range. Electrothermal functionality is also required for temperature regulation in cold conditions. However, incorporating electrothermal capability without compromising mechanical and tribological performance remains challenging. In this work, pre‐intercalated molybdenum disulfide (MoS 2 ) nanosheets were synthesized and modified by substituting molybdenum atoms with isolated iron (Fe) atoms to tailor interfacial interactions. The engineered nanosheets were hybridized with conductive carbon nanotubes to establish a synergistic filler network within an acrylonitrile butadiene rubber/butadiene rubber blend. Structural and morphological analyses confirmed successful Fe substitution and improved compatibility of MoS 2 with the matrix. The resulting hybrid nanocomposite exhibited substantial mechanical reinforcement, with tensile strength and modulus increasing by 146% and 169%, respectively, relative to the neat blend. Enhanced wear resistance was accompanied by increased friction: weight loss decreased by nearly 25%, while the coefficient of friction increased by approximately 12%. Additionally, the hybrid system demonstrated effective electrothermal performance, heating from –40°C to a stable temperature of 29°C at only 5 V within 90 s. Overall, this multifunctional nanocomposite simultaneously enhances mechanical, tribological, and electrothermal performance, offering a promising strategy for durable and temperature‐responsive rubber materials.

Macromolecular Rapid Communications
Openalex Percentile: Top 20%
Tribology and Wear Analysis
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Multifunctional Hybrid Rubber Nanocomposites With Enhanced Durability and Electrothermal Performance — Samaneh Salkhi Khasraghi, Mohammad Arjmand, et al. · Macromolecular Rapid Communications (2026) | TGRS Research Map | TGRS