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Beyond conventional calorimetry: unlocking thermal characterization with fast scanning techniques

  • Mateusz Dudziak
  • , Birte Riechers
  • , Robert Maaß
  • , Adam Michalchuk
  • , Andreas Schönhals
  • , Paulina Szymoniak*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

Fast scanning calorimetry (FSC) has emerged as a transformative technique in thermal analysis, enabling the investigation of rapid and kinetically driven thermal transitions that are inaccessible to conventional differential scanning calorimetry. This review highlights the capabilities enabled by FSC for studying a wide range of materials under extreme thermal conditions, including polymers, pharmaceuticals, metallic glasses, nanocomposites, and hydrogels. By employing ultrafast heating and cooling rates, FSC allows for the suppression of crystallization, resolution of weak transitions, and analysis of thermally labile or size-limited samples. The technique is particularly valuable for probing glass transitions, relaxation phenomena, and phase behavior in systems with complex morphologies or confined geometries. Case studies demonstrate the use of FSC in characterizing vitrification, physical aging, and interfacial dynamics, as well as its application in emerging fields such as additive manufacturing, supramolecular systems, and neuromorphic materials. Together, these examples underscore the role that FSC plays in advancing the understanding of structure-property relationships across diverse material classes.
Original languageEnglish
Article number180177
JournalThermochimica Acta
Early online date7 Nov 2025
DOIs
Publication statusE-pub ahead of print - 7 Nov 2025

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