Bioinspired Super Thermal Insulating, Strong and Low Carbon Cement Aerogel for Building Envelope

The energy crisis has arisen as the most pressing concern and top priority for policymakers, with buildings accounting for over 40% of global energy consumption. Currently, single‐function envelopes cannot satisfy energy efficiency for next‐generation buildings. Designing buildings with high mechani...

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Veröffentlicht in:Advanced science 2023-06, Vol.10 (18), p.e2300340-n/a
Hauptverfasser: Du, Fengyin, Zhu, Wenkai, Yang, Ruizhe, Zhang, Yun, Wang, Jiawei, Li, Weihuan, Zuo, Wenqiang, Zhang, Lizhi, Chen, Liuyan, She, Wei, Li, Tian
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Sprache:eng
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Zusammenfassung:The energy crisis has arisen as the most pressing concern and top priority for policymakers, with buildings accounting for over 40% of global energy consumption. Currently, single‐function envelopes cannot satisfy energy efficiency for next‐generation buildings. Designing buildings with high mechanical robustness, thermal insulation properties, and more functionalities has attracted worldwide attention. Further optimization based on bioinspired design and material efficiency improvement has been adopted as effective approaches to achieve satisfactory performance. Herein, inspired by the strong and porous cuttlefish bone, a cement aerogel through self‐assembly of calcium aluminum silicate hydrate nanoparticles (C‐A‐S‐H, a major component in cement) in a polymeric solution as a building envelop is developed. The as‐synthesized cement aerogel demonstrates ultrahigh mechanical performance in terms of stiffness (315.65 MPa) and toughness (14.68 MJ m−3). Specifically, the highly porous microstructure with multiscale pores inside the cement aerogel greatly inhibits heat transfer, therefore achieving ultralow thermal conductivity (0.025 W m−1 K−1). Additionally, the inorganic C‐A‐S‐H nanoparticles in cement aerogel form a barrier against fire for good fire retardancy (limit oxygen index, LOI ≈ 46.26%, UL94‐V0). The versatile cement aerogel featuring high mechanical robustness, remarkable thermal insulation, light weight, and fire retardancy is a promising candidate for practical building applications. Inspired by the strong and porous cuttlefish bone, a robust, durable, and thermal insulating aerogel through scalable self‐assembly of cement hydration nanoparticles (C‐A‐S‐H) is demonstrated. This bioinspired structural optimization addresses the longstanding dilemma in achieving both high mechanical strength and high porosity for good thermal insulation.
ISSN:2198-3844
2198-3844
DOI:10.1002/advs.202300340