Polydicyclopentadiene based aerogel: a new insulation material

被引:61
作者
Lee, Je Kyun [1 ]
Gould, George L. [1 ]
机构
[1] Aspen Aerogels Inc, Div Res & Dev, Northborough, MA 01532 USA
关键词
polydicyclopentadiene (pDCPD); aerogels; ring opening metathesis polymerization (ROMP); supercritical drying; nanoporous; insulation;
D O I
10.1007/s10971-007-1598-7
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Lightweight polydicyclopentadiene (pDCPD) based aerogels were developed via a simple sol-gel processing and supercritical drying method. The uniform pDCPD wet gels were first prepared at room temperature and atmospheric pressure through ring opening metathesis polymerization (ROMP) incorporating homogeneous ruthenium catalyst complexes (Grubbs catalyst). Gelation kinetics were significantly affected by both catalyst content and target density (i.e., solid content), while gel solvents also played important role in determining the appearance and uniformity of wet gel and aerogel products. A supercritical carbon dioxide (CO2) drying method was used to extract solvent from wet pDCPD gels to afford nanoporous aerogel solid. A variety of pDCPD based aerogels were synthesized by varying target density, catalyst content, and solvent and were compared with their xerogel analogs (obtained by ambient pressure solvent removal) for linear shrinkage and thermal conductivity value (1 atm air, 38 degrees C mean temperature). Target density played a key role in determining porosity and thermal conductivity of the resultant pDCPD aerogel. Differential scanning calorimetery (DSC) demonstrated that the materials as produced were not fully-crosslinked. The pDCPD based aerogel monoliths demonstrated high porosities, low thermal conductivity values, and inherent hydrophobicity. These aerogel materials are very promising candidates for many thermal and acoustic insulation applications including cryogenic insulation.
引用
收藏
页码:29 / 40
页数:12
相关论文
共 42 条
[1]   New catalysts for linear polydicyclopentadiene synthesis [J].
Abadie, MJ ;
Dimonie, M ;
Couve, C ;
Dragutan, V .
EUROPEAN POLYMER JOURNAL, 2000, 36 (06) :1213-1219
[2]   Fields of application of aerogels (Review) [J].
Akimov, YK .
INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 2003, 46 (03) :287-299
[3]   Polyurethane-based organic aerogels' thermal performance [J].
Biesmans, G ;
Randall, D ;
Francais, E ;
Perrut, M .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 1998, 225 (01) :36-40
[4]   Polyurethane based organic aerogels and their transformation into carbon aerogels [J].
Biesmans, G ;
Mertens, A ;
Duffours, L ;
Woignier, T ;
Phalippou, J .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 1998, 225 (01) :64-68
[5]   Drying of silica gels to obtain aerogels: Phenomenology and basic techniques [J].
Bisson, A ;
Rigacci, A ;
Lecomte, D ;
Rodier, E ;
Achard, P .
DRYING TECHNOLOGY, 2003, 21 (04) :593-628
[6]  
BRINKER CJ, 1990, SOL GEL SCI, pCH9
[7]   The polymerization of dicyclopentadiene: an investigation of mechanism [J].
Davidson, TA ;
Wagener, KB .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 1998, 133 (1-2) :67-74
[8]   Cellulose-based aerogels [J].
Fischer, F. ;
Rigacci, A. ;
Pirard, R. ;
Berthon-Fabry, S. ;
Achard, P. .
POLYMER, 2006, 47 (22) :7636-7645
[9]   Aerogels - Recent progress in production techniques and novel applications [J].
Fricke, J ;
Emmerling, A .
JOURNAL OF SOL-GEL SCIENCE AND TECHNOLOGY, 1998, 13 (1-3) :299-303
[10]  
Fürstner A, 2000, ANGEW CHEM INT EDIT, V39, P3012