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Polyurea–Cellulose Composite Aerogel Fibers with Superior Strength, Hydrophobicity, and Thermal Insulation via a Secondary Molding Strategy
Abstract
Aerogel materials, considered as the “miracle material that can change the world in the 21st century”, owe their transformative potential to their high specific surface area, porosity, and low density. In comparison to commercially available aerogel felt, aerogel particles, and aerogel powder, aerogel fibers not only possess the inherent advantages of aerogel materials but also exhibit exceptional flexibility and design versatility. Therefore, aerogel fibers are expected to be processed into high-performance textiles and smart wearable fabrics to further expand the application field of aerogel materials. However, the aerogel fibers suffer from poor mechanical properties and intricate, time-consuming preparation processes. Herein, a simple and efficient method for crafting polyurea–cellulose composite aerogel fibers (CAFs) with superior mechanical properties is presented. The dried bacterial cellulose (BC) matrix was immersed in a polyurea sol, and the aerogel fibers were prepared via secondary molding, followed by CO2 supercritical drying. In a representative case, the CAFs obtained via secondary molding demonstrate outstanding hydrophobicity with a contact angle of 126°, along with remarkable flexibility. Significantly, the CAFs exhibit excellent mechanical properties, including a tensile strength of 6.4 MPa. Moreover, the CAFs demonstrate superior thermal insulation capabilities, withstanding temperatures ranging from 180 to −40 °C. In conclusion, with the successful fabrication of polyurea–cellulose CAFs, this study introduces a magic approach for producing aerogel fibers endowed with exceptional mechanical properties and thermal insulation. This advancement contributes to the development and application of aerogel materials in various fields- Dataset
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- “ miracle material
- withstanding temperatures ranging
- smart wearable fabrics
- poor mechanical properties
- exceptional mechanical properties
- dried bacterial cellulose
- consuming preparation processes
- 126 °, along
- superior mechanical properties
- thermal insulation via
- 2 </ sub
- aerogel fibers suffer
- thermal insulation
- aerogel fibers
- superior strength
- aerogel powder
- aerogel particles
- aerogel materials
- various fields
- transformative potential
- tensile strength
- supercritical drying
- successful fabrication
- study introduces
- representative case
- remarkable flexibility
- polyurea sol
- performance textiles
- magic approach
- low density
- inherent advantages
- efficient method
- design versatility
- contact angle
- advancement contributes
- 4 mpa