Hollow Glass Microsphere Integrity and APTES-Associated Solvent-Resistant Phase Formation in Butyl Sealant Matrices

The integrity of hollow glass microspheres (HGMs) and the association of (3-aminopropyl)triethoxysilane (APTES) with solvent-resistant organic-phase retention were examined in model butyl sealant compounds based on isobutylene–isoprene rubber (IIR), brominated IIR (BIIR), and polybutene. Within this formulation and mixing system, HGM damage is proposed as a candidate screening indicator of cumulative processing history. HGMs can reduce composite density, but they may be damaged during processing in viscous matrices. Four formulations differing in HGM content, APTES content, and APTES/HGM addition sequence, prepared in two non-randomized batch lineages, were characterized by density, consistency, flow, peel, and tack, and by double toluene extraction coupled with electron microscopy, X-ray microanalysis, infrared spectroscopy, and thermogravimetry. A two-state density balance gave apparent crushed-HGM fractions of 71–89%, depending on the matrix-density reference. A compositionally simplified BIIR/APTES model specimen showed a 65% cyclohexane-insoluble fraction and 1H diffusion-NMR echo decays consistent with restricted proton mobility. Differences between the two same-composition formulations were associated with broader processing history, including addition sequence. APTES-containing formulations retained a solvent-resistant organic phase after extraction, including on glass surfaces, whereas the APTES-free control retained mainly glass. The specific junction chemistry, including covalent glass–silane anchoring, was not directly resolved. Cold-flow resistance and self-healing were not measured.

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Publication Details

Journal
Applied Sciences
Published
2026-09-15
DOI
https://doi.org/10.3390/app16189142
Primary Topic
Polymer Nanocomposites and Properties
Type
article
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article

Hollow Glass Microsphere Integrity and APTES-Associated Solvent-Resistant Phase Formation in Butyl Sealant Matrices

Kosma Szutkowski, Robert E. Przekop, Jakub Czakaj, Daria Pakuła et al.
Applied Sciences
Polymer Nanocomposites and Properties
article

Hollow Glass Microsphere Integrity and APTES-Associated Solvent-Resistant Phase Formation in Butyl Sealant Matrices

Kosma Szutkowski, Robert E. Przekop, Jakub Czakaj, Daria Pakuła, Miłosz Frydrych, Bogna Sztorch
article en

Abstract

The integrity of hollow glass microspheres (HGMs) and the association of (3-aminopropyl)triethoxysilane (APTES) with solvent-resistant organic-phase retention were examined in model butyl sealant compounds based on isobutylene–isoprene rubber (IIR), brominated IIR (BIIR), and polybutene. Within this formulation and mixing system, HGM damage is proposed as a candidate screening indicator of cumulative processing history. HGMs can reduce composite density, but they may be damaged during processing in viscous matrices. Four formulations differing in HGM content, APTES content, and APTES/HGM addition sequence, prepared in two non-randomized batch lineages, were characterized by density, consistency, flow, peel, and tack, and by double toluene extraction coupled with electron microscopy, X-ray microanalysis, infrared spectroscopy, and thermogravimetry. A two-state density balance gave apparent crushed-HGM fractions of 71–89%, depending on the matrix-density reference. A compositionally simplified BIIR/APTES model specimen showed a 65% cyclohexane-insoluble fraction and 1H diffusion-NMR echo decays consistent with restricted proton mobility. Differences between the two same-composition formulations were associated with broader processing history, including addition sequence. APTES-containing formulations retained a solvent-resistant organic phase after extraction, including on glass surfaces, whereas the APTES-free control retained mainly glass. The specific junction chemistry, including covalent glass–silane anchoring, was not directly resolved. Cold-flow resistance and self-healing were not measured.

Applied SciencesVol. 16(18)
Mostostal Warszawa (Poland) (PL), Adam Mickiewicz University in Poznań (PL)
Openalex Percentile: Top 22%
Polymer Nanocomposites and Properties
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