TIAN Tiebing, JIAO Luyang, YAN Jiao, et al. Modulation of Pore Structure and Properties in Phenolic Aerogels by Cationic Polyelectrolytes[J]. Aeronautical Manufacturing Technology, 2026, 69(9): 46-52.
DOI:
TIAN Tiebing, JIAO Luyang, YAN Jiao, et al. Modulation of Pore Structure and Properties in Phenolic Aerogels by Cationic Polyelectrolytes[J]. Aeronautical Manufacturing Technology, 2026, 69(9): 46-52. DOI: 10.16080/j.issn1671-833x.25010105.
Modulation of Pore Structure and Properties in Phenolic Aerogels by Cationic Polyelectrolytes
采用间苯二酚、甲醛为反应物,去离子水作为溶剂,利用聚阳离子电解质聚二烯二甲基氯化铵(PDADMAC)作为软模板,通过溶胶–凝胶法(Sol–gel)常压干燥制备了酚醛气凝胶。通过SEM、压汞法、抗压测试、TGA等手段,详细研究了PDADMAC用量对酚醛气凝胶的微观形貌、孔结构、压缩性能以及热性能等方面的影响。结果表明:在较宽的调控范围内,随着PDADMAC用量的逐渐增加,酚醛气凝胶常压干燥的线收缩率维持在5%以内,其平均孔径呈先减小后增大的趋势,比表面积呈先增大后减小的趋势;当PDADMAC的用量为5%的时候,平均孔径可降低至0.11μm,比表面积高达113.14 m
Traditional phenolic aerogel production suffers from complex processes and environmental pollution caused by organic solvents
hindering industrial scalability. In this paper, phenolic aerogels were synthesized via a sol – gel method followed by ambient pressure drying
using resorcinol and formaldehyde as reactants
deionized water as solvent
and polycationic electrolyte poly diallyldimethylammonium chloride (PDADMAC) as a soft template. A systematic inve
stigation was conducted to evaluate the influence of PDADMAC content on the structural and functional properties of phenolic aerogels. The microstructural morphology
pore architecture
compressive behavior
and thermal stability were comprehensively characterized through scanning electron microscopy (SEM)
mercury intrusion porosimetry
Brunauer-Emmett-Teller (BET) analysis
mechanical compression testing
and thermogravimetric analysis (TGA). The results demonstrated that the linear shrinkage ratio of phenolic aerogels remained below 5% within a broad PDADMAC content range during ambient drying.The average pore diameter exhibited a trend of initial reduction followed by gradual expansion
while the specific surface area displayed an inverse pattern. At an optimal PDADMAC loading of 5%
the aerogel achieved a minimized average pore diameter of 0.11 μm and a maximized specific surface area of 113.14 m
2
·g
–1
accompanied by the highest thermal stability. The entanglement of PDADMAC’s linear macromolecular chains generated physical crosslinking points within the aerogel matrix
which substantially enhanced the compressive modulus to 40.82 MPa. This work establishes a foundation for green and simplifies industrial production of phenolic aerogels.