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Published on: March 12, 2021
Sustainable silylated bacterial cellulose/MgAl-LDH composite aerogel integrating radiative cooling and thermal
Jianan Qu1, Jinjuan Xue2, Yanli Qi1
1School of Environmental Science and Engineering, School of Materials Science and Engineering, Changzhou University, Changzhou, 213164, China.
Abstract:
Passive daytime radiative cooling provides a promising zero-energy solution to reduce energy consumption and carbon emissions in building cooling. While cellulose-based radiative coolers have gained research focus, their efficiency remains constrained by inadequate spectral properties and parasitic heat gain. Herein, a novel silylated bacterial cellulose/MgAl-layered double hydroxide (MBC/LDH) composite aerogel with multi-scale architecture and nano/micro porous structure was fabricated via facile freeze-drying. Within this architecture, 1D bacterial cellulose (BC) nanofibers serve as the matrix, while methyltrimethoxysilane (MTMS) silylation simultaneously enables crosslinking, hydrophobization, and enhanced emissivity through Si-O-Si/Si-O-C bonding. Incorporating 2D MgAl-LDH imparts flame retardancy and further modulates infrared emissivity. This synergistic design yields robust mechanical strength and exceptional optical properties with 96.5 % solar reflectivity and 92.3 % infrared emissivity. Outdoor testing (493.2 W·m-2 solar intensity) achieved a 6.3 °C sub-ambient cooling effect, significantly surpassing pure BC aerogel (1.9 °C). The aerogel also exhibits outstanding flame resistance (LOI = 34.1 %), ultralow thermal conductivity (0.03478 W·m-1·K-1) and high water contact angle (142°), providing essential thermal insulation, flame retardancy and self-cleaning properties. Year-round simulations demonstrate 41.2 % cooling energy savings when applied to roofs and walls. This work provides a pathway for developing advanced sustainable BC-based composite aerogels for energy-efficient building cooling.
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