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April 27, 2026ACS Applied Materials & Interfaces0 citations

Synergistic Evaporative Cooling and Dual-Mode Luminescent Film for Photovoltaic Cooling and Spectral Harvesting

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SQShuang QiuJSJun SunJJJing Jiang

Key Points

  • This research aims to develop a passive cooling film that enhances both thermal management and spectral conversion in photovoltaic devices.
  • A photoluminescent passive cooling film was created using polyvinyl alcohol, calcium chloride, and 3-acrylamidophenylboronic acid.
  • The film's performance was tested under simulated sunlight to evaluate cooling efficiency and power conversion.
  • Field tests verified improvements in temperature stabilization and power conversion efficiency in outdoor conditions.
  • The dual-mode film resulted in a 10.7 °C average temperature reduction in solar cells under simulated sunlight.
  • Short-circuit current density increased by 2.2% in solar cells due to spectral conversion.
  • Outdoor evaluations showed a peak power conversion efficiency enhancement of 15.4% for PVA-ABA3 coated cells.

Abstract

Passive cooling thermal management is crucial for addressing inevitable heating and inefficient heat dissipation in photovoltaic (PV) devices. Designing cooling systems with high transparency, solar conversion, and interfacial properties for diverse PV technologies remains challenging. This work develops a photoluminescent passive cooling film as a “front-surface” solution for silicon (Si) based solar cells, integrating passive evaporative cooling with spectral conversion. This environmentally friendly film is fabricated through simple self-cross-linking of polyvinyl alcohol (PVA), calcium chloride (CaCl2), and 3-acrylamidophenylboronic acid (ABA). The film exhibits adaptive moisture sorption–desorption dynamics across wide humidity ranges, enabling efficient cooling. Additionally, PVA-ABA film possesses unique UV-activated fluorescence and room-temperature phosphorescence (RTP) in ambient conditions. Its spectral conversion capability enhances photon utilization in solar cells, increasing short-circuit current density (Jsc) by 2.2%. Under dual functionality, solar cells coated with a PVA-ABA3 film achieve an average temperature reduction of 10.7 °C and a relatively 7.9% improvement in power conversion efficiency (PCE) compared to uncoated cells under simulated sunlight. Outdoor evaluations demonstrate PVA-ABA3 coated solar cells sustain temperature stabilization and achieve a peak enhancement in PCE of 15.4%. This work develops a multifunctional coating that simultaneously addresses thermal management and spectral conversion challenges in PV applications.

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Cite This Study

Qiu et al. (2026) studied this question.

synapsesocial.com/papers/69eefd82fede9185760d4350https://doi.org/10.1021/acsami.6c00081
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