Soft photonic hydrogel interfaces for autonomous and dynamic thermoregulation

Adaptive passive cooling offers an energy-efficient approach to thermal management by dynamically responding to changes in solar irradiation, temperature, and humidity without external power input. However, existing adaptive thermoregulation materials remain limited by structural–mechanical mismatches in rigid multilayer architectures and weak coupling among optical, sorption, and mechanical functions. Here, we report a soft photonic hydrogel interface whose adaptive thermal regulation performance arises from the coordinated roles of a zwitterionic polymer network, hexagonal boron nitride (hBN), and aluminum oxide (Al 2 O 3 ). The zwitterionic chains provide strong mid-infrared emission, high moisture affinity, conformal adhesion, and immobilization of hygroscopic lithium chloride (LiCl) salts; hBN nanoplates enhance broadband solar scattering and thermal transport; and Al 2 O 3 nanoparticles regulate stretchability, thus enabling radiative cooling, evaporative cooling, and sorption-induced heat release within one system. This all-in-one materials design yields high solar reflectance (0.87) and thermal emittance (0.94), alongside rapid, autonomous water uptake and release driven by environmental stimuli. Consequently, the soft photonic interface achieves up to 7.1 °C subambient cooling during the daytime and a 5.8 °C nighttime temperature increase via continuous hygroscopic latent heat release, effectively mitigating diurnal overcooling without external energy input. This work establishes a soft-matter strategy for autonomous and bidirectional thermal regulation across deformable and complex surfaces.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-16
DOI
https://doi.org/10.1073/pnas.2610818123
Primary Topic
Thermal Radiation and Cooling Technologies
Type
article
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Soft photonic hydrogel interfaces for autonomous and dynamic thermoregulation

Chan Jae Shin, Jiepin Wang, Meijie Chen, Xingkui Guo et al.
Proceedings of the National Academy of Sciences
Thermal Radiation and Cooling Technologies
article

Soft photonic hydrogel interfaces for autonomous and dynamic thermoregulation

Chan Jae Shin, Jiepin Wang, Meijie Chen, Xingkui Guo, Wubin Bai, Swee Ching Tan, Shuai Guo, Zhong‐Zhen Yu, Yimou Huang, Haojie Lü, Mang Zhao, Zhen Yu, Qin Ye, Qing Li, Zhuo Chen, Hongjie Yan, Kaiqi Liang, Yaoxin Zhang
article en

Abstract

Adaptive passive cooling offers an energy-efficient approach to thermal management by dynamically responding to changes in solar irradiation, temperature, and humidity without external power input. However, existing adaptive thermoregulation materials remain limited by structural–mechanical mismatches in rigid multilayer architectures and weak coupling among optical, sorption, and mechanical functions. Here, we report a soft photonic hydrogel interface whose adaptive thermal regulation performance arises from the coordinated roles of a zwitterionic polymer network, hexagonal boron nitride (hBN), and aluminum oxide (Al 2 O 3 ). The zwitterionic chains provide strong mid-infrared emission, high moisture affinity, conformal adhesion, and immobilization of hygroscopic lithium chloride (LiCl) salts; hBN nanoplates enhance broadband solar scattering and thermal transport; and Al 2 O 3 nanoparticles regulate stretchability, thus enabling radiative cooling, evaporative cooling, and sorption-induced heat release within one system. This all-in-one materials design yields high solar reflectance (0.87) and thermal emittance (0.94), alongside rapid, autonomous water uptake and release driven by environmental stimuli. Consequently, the soft photonic interface achieves up to 7.1 °C subambient cooling during the daytime and a 5.8 °C nighttime temperature increase via continuous hygroscopic latent heat release, effectively mitigating diurnal overcooling without external energy input. This work establishes a soft-matter strategy for autonomous and bidirectional thermal regulation across deformable and complex surfaces.

Proceedings of the National Academy of SciencesVol. 123(38)
University of North Carolina at Chapel Hill (US), Central South University (CN), National University of Singapore (SG), Shanghai Jiao Tong University (CN), Nanomaterials Research (United States) (US), Applied Physical Sciences (United States) (US)
Affordable and clean energy
Openalex Percentile: Top 16%
Thermal Radiation and Cooling Technologies
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