Related Experiment Video
Updated: Aug 6, 2026

TiO2-coated Hollow Glass Microspheres with Superhydrophobic and High IR-reflective Properties Synthesized by a Soft-chemistry Method
Published on: April 26, 2017
Anisotropic core-shell ceramic nanofibrous membrane with improved optical reflectivity and thermal insulation for
Huihuang Ma1,2, Yikun Liu1,2, Jianfei Gao3
1Key Laboratory of Specially Functional Polymeric Materials and Related Technology (Ministry of Education), School of Chemical Engineering, East China University of Science and Technology, Shanghai, China.
Abstract:
The development of multifunctionally coupled materials that can adapt to complex thermophotonic environments is increasingly critical for next-generation aerospace, defense, and high-energy laser applications. Ceramic nanofibers, though inherently robust, often struggle to reconcile optical reflectivity with directional thermal management under extreme conditions. Here, we present a core-shell ceramic nanofibrous membrane, comprising a mesoporous silica shell and a crystalline boron nitride core, which exhibits dynamic thermal-optical functionality tailored to high-flux laser exposure. By virtue of dual-channel electrospinning and calcination, the structure achieves high reflectivity (≈ 100% at 1064 nm) while enabling anisotropic thermal conduction-rapidly dissipating heat in the membrane plane while insulating through its thickness. This functional decoupling at the single-fiber level empowers the membrane to maintain mechanical and structural integrity above 1500 °C, outperforming conventional ceramic or polymer systems in both laser shielding and thermal resilience. Moreover, the membrane demonstrates a compressive elasticity of 95% strain, a tensile strength of ≈ 20 MPa, and structural stability under a real-time laser impact. By introducing a design strategy that couples optical scattering with spatially controlled heat flow, this work provides an effective pathway for designing adaptive ceramic nanofiber systems engineered to thrive in complex, coupled-mechanism environments.

