High above the ground, strung between towers that carry electricity across continents, sit components so unassuming that most people never notice them: the rubber sheds of high-voltage composite insulators. These flexible skirts are the first line of defense between energized conductors and the steel poles supporting them, and their failure can trigger flashovers, outages, and costly repairs. A new open-access review in Polymer Bulletin by Victor Ogbonna, Olawale Popoola, and Patricia Popoola of Tshwane University of Technology takes stock of the two rubber families that dominate this hidden corner of materials science—silicone rubber (SIR) and ethylene propylene diene monomer rubber (EPDM)—and maps how inorganic fillers are being used to push their mechanical, electrical, thermal, and water-repelling performance to new limits.
The stakes are larger than they might appear. As electricity generation expands to meet the demands of inclusive and sustainable societies, high-voltage network infrastructure has accelerated remarkably, and overhead transmission remains far more cost-effective than burying cables underground, a point reinforced by an April 2025 report from the Institution of Engineering and Technology. Insulators in these lines do double duty: they bear mechanical loads while providing sufficient electrical insulation between live conductors and supporting structures. Ceramics and glass once dominated, but polymer composites have steadily displaced them thanks to their low weight, hydrophobicity, breakdown strength, corrosion resistance, low cost, and ease of handling and installation. A composite insulator consists of three sections—a core rod, the housing or weather sheds, and end fittings—and it is the housing that most often determines whether the device survives decades outdoors.
The review highlights data from the International Council on Large Electric Systems (CIGRE) showing that the failure rate of high-voltage composite insulators is driven largely by degradation of the housing and shed. Aging manifests as chalking or powdery surfaces, damage, loss of hydrophobicity, poor mechanical strength, and reduced electrical breakdown strength. Because sheds face environmental, mechanical, electrical, and thermal stress simultaneously, the authors note that shed failure is reportedly inevitable over time, making material improvement the central battleground. Silicone rubber and EPDM have attracted the most attention as matrix materials, and the review systematically examines how each performs and how each can be strengthened.
Silicone rubber is an unusual polymer. Derived ultimately from sand or quartz, it features an alternating silicon-oxygen backbone rather than the carbon-carbon chains of organic rubbers, making it a hybrid organo-silicon material. In high-voltage insulation, the workhorse formulation is based on polydimethylsiloxane, prized for its hydrophobic, water-repellent character. Crucially, SIR can recover hydrophobicity between contamination events and corona exposure, a self-healing surface property that other materials lack. Yet the review stresses that SIR is not invulnerable: silicon-carbon bonds are weaker than the Si-O-Si backbone, opening the door to hydrolysis, oxidative degradation, and photocatalytic degradation under harsh conditions, while ultraviolet radiation can break bonds, lower surface resistance to moisture, and raise leakage currents.
The evidence that fillers can transform SIR is striking. In one study cited by the review, Aiman and colleagues subjected high-temperature vulcanized SIR hybrid composites loaded with nano-silica and micro alumina trihydrate to 900 hours of multi-stress aging. The composite with 6 weight percent SiO2 achieved a direct-current resistivity of about 532.6 × 10^13 ohm-meters at 60 degrees Celsius before aging, with only an 18.5 percent reduction afterward, and maintained the smallest leakage current among all samples. Beyond that optimum, particle agglomeration and poor dispersion degraded performance—illustrating a recurring theme: more filler is not always better. In related work, Wang and colleagues anchored TiO2 nanoparticles onto talc nanoplatelets via a dehydration reaction, producing composites with more uniform particle dispersion and improved breakdown strength, while Mahendra and colleagues found that adding 2 weight percent Al2O3 and 1 weight percent boron nitride to room-temperature vulcanized SIR delayed thermal degradation by roughly 20 degrees Celsius and boosted flashover voltage by 40.5 percent under salt-fog testing of heavily polluted surfaces.
Other SIR studies reinforce the pattern that optimal loading is a narrow target. Rehman and colleagues found that 3 weight percent nano-TiO2 preserved the highest direct-current resistance—from 482.5 down to 198.7 gigaohms even at elevated temperature—while 3 and 5 weight percent loadings showed the best hydrophobicity, attributed to low surface energy, non-polar methyl groups, and surface roughness that hinder water ingress. Ahmed and colleagues observed that dielectric strength in silica-filled HTV-SIR rose with filler content up to 30 weight percent, beyond which conduction paths formed between particles and breakdown strength fell. Hybrid approaches also shine: composites with 4 weight percent nano-SiO2 and 20 weight percent micro-Al2O3 delivered optimal dielectric breakdown strength before and after aging, and a 15 weight percent ATH@SiO2 hybrid in RTV-SIR achieved surface resistivity of 8.4 × 10^14 ohm-centimeters, breakdown strength of 190 kilovolts, and improved tracking resistance.
EPDM tells a parallel story with its own chemistry. Introduced into high-voltage insulator technology some 45 to 50 years ago, this elastomer owes its outstanding environmental resistance to low unsaturation in the parent polymer chain, giving it chemical and weather resistance along with strong thermal and electrical properties. Rizwan and Chandan compared magnesium hydroxide and alumina trihydrate fillers in EPDM and found that Mg(OH)2 composites showed better interfacial interaction, yielding superior tensile strength, thermal stability, and hydrophobicity, while 60 weight percent ATH delivered maximum dielectric breakdown strength. Park and Lee explored a three-component system of surface-modified nano-SiC within micro-SiC/EPDM, where vinyl-functionalized nanoparticles bonded to the matrix through hydrosilylation; adding 2.0 grams of nano-SiC distributed space charge evenly and raised breakdown strength, but beyond that threshold conductive passages formed and performance dropped. Eliyan and colleagues showed that gamma radiation improved ZnO/EPDM dispersion and cross-linking, with tensile strength and dielectric strength peaking at low loadings of 0.1 to 0.3 weight percent.
Hybrid and blended systems are emerging as a particularly promising frontier. Rizwan and Chandan’s accelerated aging work—exposing composites to high temperature, ultraviolet radiation, and acid rain—showed that Mg(OH)2/EPDM composites loaded with TiO2 nanoparticles reached a contact angle of 110 degrees, far above pure EPDM’s 83.6 degrees, because TiO2’s photostability and low surface energy improved matrix interaction, whereas boron nitride, intrinsically partially hydrophilic, left contact angle unchanged. Blending the two rubbers themselves also pays dividends: Alber and colleagues found that a 75 weight percent EPDM, 25 weight percent SIR blend achieved a breakdown strength of 19.61 kilovolts per millimeter, versus 12.89 for the inverse ratio, though tensile strength favored the SIR-rich blend at 3.54 megapascals. Bazli and colleagues similarly reported that EPDM blended into SIR raised dielectric breakdown strength by trapping charge carriers, effectively impeding electrical failure.
The review does not shy away from the field’s persistent problems: filler agglomeration, surface property degradation, corrosion, leakage current, flashover, and discharge all shorten insulator service life, and polymer insulators remain vulnerable to aging under ultraviolet radiation and extreme weather. The authors’ prescriptions are forward-looking. They recommend response surface methodology with central composite design to optimize processing parameters and cost—an approach not yet applied to insulator shed materials—alongside 3D turbula dispersion and sintering techniques to combat nanoparticle agglomeration. They propose fabricating SIR and EPDM composites reinforced with electrical-corrosion-resistant glass nanoparticles, which offer superior dielectric performance, boron-free chemical durability, and high mechanical reinforcement, and they call for wear characterization, long-term dielectric breakdown simulation using COMSOL Multiphysics, and machine learning as a predictive tool. For a component the public rarely sees, the humble rubber shed is suddenly at the center of a materials revolution—and the grid’s reliability may depend on getting every weight percent right.
Subject of Research: Silicone rubber and EPDM composites reinforced with inorganic fillers for high-voltage power transmission insulator sheds
Article Title: Silicone and EPDM rubber-based composites for high-voltage power transmission insulator sheds: a review
Article References: Ogbonna, V., Popoola, O., & Popoola, P. (2026). Silicone and EPDM rubber-based composites for high-voltage power transmission insulator sheds: a review. Polymer Bulletin, 83(12), Article 676. https://doi.org/10.1007/s00289-026-06737-3
Image Credits: AI Generated
DOI: 10.1007/s00289-026-06737-3
Keywords: silicone rubber, EPDM, composite insulators, high-voltage insulation, nanofillers, hydrophobicity, dielectric breakdown, leakage current, flashover, polymer composites, insulator sheds, aging degradation
News Source: Faith Mcneil. (October 7, 2026). Rubber Reinvented: How Nanofillers Are Hardening the Power Grid’s Weakest Link. Scienmag.



