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April 23, 2026ACS Applied Energy Materials0 citations

BSZT/BNNS-Incorporated PVDF Composites for Dramatically Enhanced Electrocaloric Cooling Capability

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XLXiaofeng LiuMZMingtao ZhuHHHao Hu

Key Points

  • The aim is to enhance the electrocaloric effect in composites for better cooling applications. The focus is on addressing thermal and dielectric limitations.
  • Proposed a dual-filler strategy using BSZT nanofibers and BNNSs in a ferroelectric polymer matrix.
  • Optimized the composition at 9 wt % BSZT and 8 wt % BNNSs to evaluate performance characteristics.
  • Measured electrocaloric temperature change, thermal conductivity, and breakdown strength at room temperature.
  • Achieved a temperature change of ΔT = 13.5 K at 75 MV/m.
  • Demonstrated thermal conductivity of 1.6 W/(m·K) and breakdown strength of 394 MV/m.
  • Improved cooling efficiency by 230% compared to the pristine polymer over 1000 cycles.

Abstract

With increasing global concerns over energy efficiency and environmental protection, traditional refrigeration technologies encounter significant challenges. The electrocaloric effect (ECE), as a solid-state and environmentally friendly refrigeration technology, has emerged a key focus for next-generation cooling devices owing to its ease of control and broad applicability. However, low thermal conductivity (κ 100 MV/m) limit its practical application. Herein, we propose a dual-filler synergy strategy by integrating barium strontium zirconium titanate (BSZT) nanofibers (high polarization) and hydroxylated boron nitride nanosheets (BNNSs–OH, high κ and low dielectric constant) into a relaxor ferroelectric polymer matrix. This effectively simultaneously addresses dielectric mismatch and poor thermal management, two long-standing bottlenecks of single-filler ECE systems. The optimized composite (9 wt % BSZT/8 wt % BNNSs) demonstrates outstanding performance at room temperature (30 °C): a significant electrocaloric temperature change (ΔT = 13.5 K at 75 MV/m), enhanced thermal conductivity (κ = 1.6 W/(m·K)), and improved breakdown strength (Eb = 394 MV/m). Compared to the pristine polymer, the composite demonstrates a 230% improvement in cooling efficiency, alongside great cyclic stability over 1000 cycles. This work offers a material-based solution for high-performance solid-state cooling, facilitating practical applications in portable devices, wearable electronics, and chip thermal management.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69e9b6aa85696592c86eaf52https://doi.org/10.1021/acsaem.6c00660
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