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March 7, 20260 citations

Microencapsulated Alkane Wax Melting: Measured by 1 ¹ H NMR Relaxometry and Diffusometry.

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MYMatthew C. YoungMNMadison L. NelsonMSMatthew E. Skuntz

Key Points

  • The aim is to investigate the melting properties of microencapsulated n-alkane waxes using NMR techniques.
  • Characterized unencapsulated and microencapsulated n-alkane waxes throughout their melting phases.
  • Utilized NMR relaxometry and diffusometry to measure relaxation and diffusion metrics.
  • Conducted measurements at stepped temperature points to assess molecular migration and disordering.
  • Detected molecular-level disordering during melting in microencapsulated waxes.
  • Measured diffusion coefficients matching established literature values for unencapsulated waxes.
  • Identified a significant pseudo interface domain affecting melting behavior in microencapsulated waxes.

Abstract

Phase change materials (PCMs) are useful for energy storage. Large latent heats make n-alkane waxes effective PCMs. Octadecane and eicosane were studied as both unencapsulated and microencapsulated with NMR relaxometry and diffusometry throughout melting. Each wax was stepped degree-wise through its melting point. At each temperature point, NMR T 2 T₂ relaxation, T 1 - T 2 T₁-T₂ correlated relaxation, and PGStE measurements as a function of molecular migration time Δ were acquired. These measurements detected molecular-level disordering due to microencapsulation. NMR relaxometry measurements on the solid waxes measured a major intermediate mobility domain in the microencapsulated waxes. This pseudo interface domain in the solid microencapsulated waxes is consistent with the disruption of long-range order, increasing heterogeneity and extending the melting point range. NMR diffusometry measured diffusion coefficients D D in the unencapsulated wax melts, matching values established in the literature. D D as a function of 1 / T 1/T was fit for Arrhenius activation energies E a Eₐ as a function of Δ for each stage of melting. D D values are reported for each solid wax sample, which are not measurements of only molecular diffusion but are consistent with magnetization transport via spin diffusion.

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Cite This Study

Young et al. (2026) studied this question.

synapsesocial.com/papers/69abc2255af8044f7a4eb6bdhttps://doi.org/10.1002/mrc.70087
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