Engineering Ionic Liquid-Modified Silicon Carbide Elastomer Composites for Enhanced Thermochromic Responsiveness in Smart Flexible Sensors

Разработка эластомерных композитов на основе карбида кремния, модифицированных ионными жидкостями, для повышения термохромной чувствительности интеллектуальных гибких сенсоров
Bolesław Szadkowski, Anna Marzec
2026-02-01

NBR compositesionic liquidssilicon carbide compositesthermo-oxidative agingthermochromic elastomer sensors
High Resolution Image Download MS PowerPoint Slide Flexible thermochromic sensors emerge as next-generation smart materials for adaptive temperature sensing, thermal management, and multifunctional device applications. In this study, nitrile butadiene rubber (NBR) composites incorporating a thermochromic pigment, silicon carbide (SiC), and two distinct ionic liquids (ILs) were systematically investigated. Rheometric analysis at 160 °C revealed that SiC promotes network formation by reducing scorch and vulcanization times (t 0.5, t 90 ) and increasing torque increment (ΔM), which correlates with enhanced cross-link density. The introduction of ILs provided a tunable effect on both cure kinetics and network architecture: [bmim][BF 4 ] acted as a catalytic accelerator, shortening curing times and increasing ΔM, while PMIMTFSI exhibited a plasticizing effect, resulting in lower cross-link density. Stress–strain analysis confirmed these trends, with SiC- and [bmim][BF 4 ]-containing composites displaying higher tensile strength and modulus, whereas [C3mim][TFSI] reduced stiffness but increased extensibility. Thermo-oxidative aging studies over 1, 2, and 3 weeks demonstrated superior aging factors (AF) for SiC- and [bmim][BF 4 ]-based systems, underscoring their resilience against oxidative degradation. Importantly, it was observed that the choice of ionic liquid allows direct control over the thermochromic response: [bmim][BF 4 ] enabled effective and reversible color transitions at elevated temperatures, while [C3mim][TFSI] suppressed pigment activity within the elastomeric matrix. These results highlight the critical role of ionic liquid chemistry in tailoring both functional and structural properties of thermochromic elastomer sensors.
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Ionic-liquid chemistry directly controls thermochromic behavior: [bmim][BF4] enables effective reversible color transitions at elevated temperatures, whereas [C3mim][TFSI] suppresses pigment activity.
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SiC- and [bmim][BF4]-based composites show superior aging factors after 1, 2, and 3 weeks of thermo-oxidative aging, indicating enhanced oxidative durability.
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SiC- and [bmim][BF4]-containing composites exhibit higher tensile strength and modulus, while [C3mim][TFSI] decreases stiffness but improves extensibility.
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Silicon carbide promotes NBR network formation by shortening scorch and vulcanization times and increasing torque increment, indicating higher cross-link density.
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[bmim][BF4] acts as a catalytic accelerator, further reducing curing times and increasing torque increment, whereas [C3mim][TFSI] plasticizes the network and lowers cross-link density.

NBR elastomer composites containing thermochromic pigment, silicon carbide (SiC), and ionic liquids

The effects of SiC and ionic-liquid chemistry on curing and network structure, mechanical and thermo-oxidative properties, and the reversibility and intensity of thermochromic response

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2026-02-01
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Bolesław Szadkowski
Anna Marzec
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