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March 13, 2026Coatings0 citationsOpen Access

Superhydrophobic Nanocomposite of Paraloid B72 and Modified Calcium Carbonate Nanoparticles for Cultural Heritage Conservation

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EGEirini GkravaNFNikoletta FloriniPMPanagiotis N. Manoudis

Key Points

  • This research aims to enhance the wettability of Paraloid B72 by incorporating modified calcium carbonate nanoparticles to achieve superhydrophobic properties.
  • Evaluated the wettabilities of calcium carbonate nanoparticles through water contact angle measurements.
  • Selected CaCO3-C12 nanoparticles for further study based on optimal water contact angle results.
  • Dispersed selected nanoparticles in B72 solutions and applied them to a limestone substrate.
  • Conducted transmission electron microscopy for structural analysis of nanoparticles.
  • Assessed durability of the composite coating against various environmental factors.
  • Achieved water contact angles exceeding 150° for the composite coating, indicating superhydrophobicity.
  • Minimal color alteration of limestone was observed after coating.
  • Demonstrated effective resistance to capillary water absorption and various environmental stressors.

Abstract

Superhydrophobic materials have clear potential for mitigating rain/humidity-induced damage to cultural heritage. In the present study, the wetting properties of Paraloid B72 were tailored to achieve superhydrophobicity by incorporating modified calcium carbonate (CaCO3) nanoparticles (NPs). B72 is a well-established conservation product while CaCO3 is chemically compatible with calcareous materials commonly found in cultural heritage buildings and objects. Initially, the wettabilities of CaCO3 NPs, functionalised with caproic (C6), caprylic (C8), lauric (C12), myristic (C14), palmitic (C16), and stearic (C18) acid, were evaluated by measuring water contact angles (CAs) on NP pellets. For NPs with short hydrocarbon chains, CA increased with chain length, from 66.3° for CaCO3-C6 to 118.0° for CaCO3-C12 NPs. For NPs with longer chains, CA remained stable and around 118°. Based on these results, CaCO3-C12 NPs were selected for further investigation and subjected to transmission electron microscopy analysis, which revealed chain-like agglomerates of aggregated nanocrystallites (5–10 nm) forming 40–150 nm polycrystalline NPs. Scanning transmission electron microscopy combined with elemental mapping revealed a homogeneous distribution of Ca, C, and O within the NPs. Next, CaCO3-C12 NPs were dispersed in B72 solutions and sprayed onto limestone, which was employed as a model calcite-rich substrate. At optimal NP concentration, the resulting composite coating exhibited superhydrophobicity (CA > 150°), while it induced minimal colour alteration to limestone and effective resistance to capillary water absorption. The fluorine-free coating also demonstrated good durability against UV exposure, drop impact, salt attack, freeze–thaw cycles, tape peeling, drop pH variations, and thermal treatment.

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Cite This Study

Gkrava et al. (2026) studied this question.

synapsesocial.com/papers/69b3ab4c02a1e69014ccc1c5https://doi.org/10.3390/coatings16030347
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