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Using Polystyrene-block-poly(acrylic acid)-coated Metal Nanoparticles as Monomers for Their Homo- and Co-polymerization
Published on: July 9, 2015
Architected Spatially Deterministic Multiscale Phase Segregation in Block Copolymer Composites for Augmented
Mingxin Feng1, Feiyang Zhou2, Haoran Cai1
1School of Chemistry and Chemical Engineering, Jiangsu Optoelectronic Functional Materials and Engineering Research Center, Jiangsu Key Laboratory of Advanced Optical Functional Film Materials and Technologies, Southeast University, Nanjing, China.
Abstract:
Passive radiative cooling, which reflects solar irradiation while emitting heat through the atmospheric window, provides a sustainable solution for zero-energy thermal management. Simultaneously achieving high solar reflectivity and infrared emissivity remains challenging since the structural parameters governing light scattering and thermal radiation are intrinsically coupled. A block copolymer composite (denoted SEDO) of polystyrene-block-poly(ethylene-ran-butylene)-block-polystyrene (SEBS) with 9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide (DOPO) was judiciously designed and architected through multiscale phase segregation to enable decoupled structure-determined spectral regulation. Macroscopic phase segregation in SEDO endows three-dimensionally interconnected porous skeleton that enhances broadband Mie scattering, resulting in a high solar reflectivity of 97.2%. Meanwhile, DOPO fillers that selectively located in the polystyrene domains introduce strong molecular vibrational absorption within the atmospheric window. The cylindrical microphase separation morphology enables an emissivity of 95.5% with only 5 vol% additive. Benefiting from this decoupled optical regulation, the composite achieves sub-ambient cooling of ∼8.1°C under clear-sky conditions and ∼6.3°C under cloudy conditions, while maintaining efficient heat dissipation under high heat flux. Combined with excellent mechanical flexibility, flame retardancy, and environmental stability, this multiscale phase segregation strategy provides a versatile platform for augmented radiative cooling in practical thermal-management applications via crafting spatially deterministic block copolymer composites.
