a.Shandong Key Laboratory of Advanced Glass Manufacturing and Technology, Advanced Materials Institute, QiLu University of Technology (Shandong Academy of Sciences), Jinan 250014, China
b.Shandong Juhe New Materials Co., Ltd., Jinan 250119, China
c.Binzhou Kening New Materials Co., Ltd., Binzhou 256200, China
zhaoxinfu@sdas.org (X.F.Z.)
yixb@qlu.edu.cn (X.B.Y.)
收稿:2025-12-30,
修回:2026-02-08,
录用:2026-02-13,
网络首发:2026-05-12,
纸质出版:2026-07-05
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Su, M. Q.; Song, X. L.; Zhao, X. F.; Yi, X. B.; Liu, S. J.; Liu, X. C.; Ren, J. Y.; Zhu, J. X.; Zhang, Q.; Zhang, Z. G.; Qu, Y. T. Scalable synthesis of flexible polyimide/ZrO2 composite aerogels with ultra-low thermal conductivity and high-temperature resistance. Chinese J. Polym. Sci. 2026, 44, 2385–2394 DOI: 10.1007/s10118-026-3627-4.
Meng-Qing Su, Xiao-Lin Song, Xin-Fu Zhao, et al. Scalable Synthesis of Flexible Polyimide/ZrO2 Composite Aerogels with Ultra-low Thermal Conductivity and High-temperature Resistance[J]. Chinese Journal of Polymer Science, 2026, 44(7): 2385-2394. DOI: 10.1007/s10118-026-3627-4.
Su, M. Q.; Song, X. L.; Zhao, X. F.; Yi, X. B.; Liu, S. J.; Liu, X. C.; Ren, J. Y.; Zhu, J. X.; Zhang, Q.; Zhang, Z. G.; Qu, Y. T. Scalable synthesis of flexible polyimide/ZrO2 composite aerogels with ultra-low thermal conductivity and high-temperature resistance. Chinese J. Polym. Sci. 2026, 44, 2385–2394 DOI: 10.1007/s10118-026-3627-4. DOI:
Meng-Qing Su, Xiao-Lin Song, Xin-Fu Zhao, et al. Scalable Synthesis of Flexible Polyimide/ZrO2 Composite Aerogels with Ultra-low Thermal Conductivity and High-temperature Resistance[J]. Chinese Journal of Polymer Science, 2026, 44(7): 2385-2394. DOI: 10.1007/s10118-026-3627-4. DOI:
An ordered dual-network PI/ZrO
2
aerogel was constructed
via
hydrogen and Zr―O bonds
significantly enhancing its thermal insulation
mechanical strength
and thermal stability.
Polyimide (PI) aerogels are at the forefront of heat insulation applications. However
their relatively limited mechanical strength and thermal insulation performance constrain their broader application. This study presents an innovative strategy for preparing PI/ZrO
2
composite aerogels with a double-cross-linked network structure. The embedding of ZrO
2
nanoparticles into the PI aeroge
l matrix was enabled by the formation of hydrogen bonds and Zr―O bonds
thus leading to the creation of an ordered
layered network architecture. The introduction of ZrO
2
nanoparticles caused a reduction in the thermal conductivity of the PI/ZrO
2
composite aerogel from 0.0367 W·m
–1
·K
–1
to 0.0305 W·m
–1
·K
–1
. Meanwhile
it significantly increased the compressive strength of the PI/ZrO
2
composite aerogel. When the ZrO
2
content is 2%
the mechanical strength increases from 0.67 MPa to 1.43 MPa. At 800 °C
the residual mass of the PI/ZrO
2
-5% aerogel exceeded that of the PI aerogel by 2.3%. These enhancements can be attributed to the cross-linked network triggered by the ZrO
2
nanoparticles. Owing to its low thermal conductivity and high-temperature tolerance
ZrO
2
remarkably improved the thermal insulation and thermal stability of the aerogel. To assess the feasibility of industrial-scale application of the PI/ZrO
2
composite aerogel
a series of pilot-scale amplification experiments were conducted. These results confirm the stability and reproducibility of the synthesis process. The PI/ZrO
2
composite aerogel exhibited considerable potential for a wide range of applications across diverse fields.
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