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March 25, 2026Discover Industrial Chemistry and Materials4 citationsOpen Access

A comprehensive review of the electrocaloric effect in lead free ferroelectrics for solid state cooling

SUSana UllahHong Kong Polytechnic UniversityHRHassan RazaHong Kong Polytechnic UniversityAAAwais AkhtarHong Kong Polytechnic University

Key Points

  • The aim is to explore the electrocaloric effect in lead-free ferroelectric materials for refrigeration applications and their environmental impact.
  • Thorough examination of thermodynamic principles governing electrocaloric refrigeration.
  • Review of various lead-free materials including bulk ceramics, single crystals, and polymers.
  • Focus on structural design and compositional engineering to enhance performance.
  • Discussion of modeling and simulation efforts for specific ferroelectric materials.
  • Identification of scalable methods for device integration.
  • Lead-free ferroelectrics show promising potential for energy-efficient cooling.
  • Advancements in material design improve both cooling efficiency and mechanical reliability.
  • Ecological compliance is achievable through the use of eco-friendly materials.
  • Future research could lead to multifunctional materials suitable for industrial applications.

Abstract

Electrocaloric (EC) solid-state cooling technology is attracting interest as a versatile solution for energy-efficient thermal regulation in industrial and electronic applications. Ferroelectric materials, characterized by significant polarization and entropy variations in response to electric fields, offer small, environmentally sustainable cooling systems suitable for integration into sophisticated devices. Recent studies highlight the necessity of lead-free electrochemical materials to comply with ecological and regulatory standards. The article offers a thorough examination of the thermodynamic concepts that regulate EC refrigeration and emphasizes advancements in Pb-free materials, encompassing bulk ceramics, single crystals, thin and thick films, multilayer structures, and polymers. Emphasis is placed on compositional engineering and structural design methodologies that improve electrochemical performance while guaranteeing mechanical dependability for industrial applications. The discussion encompasses modeling and simulation endeavors concerning BaTiO₃ (BT), BaSrTiO₃ (BST), and P(VDF-TrFE) copolymers, as well as novel methodologies for scalable device integration. Ultimately, prospective avenues are delineated for the advancement of multifunctional electrochemical materials and composites that integrate temperature management with structural and energy capabilities for next-generation industrial and electronic systems.

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Cite This Study

Ullah et al. (2026) studied this question.

synapsesocial.com/papers/69c37adcb34aaaeb1a67cb9ehttps://doi.org/10.1007/s44508-026-00001-2
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