Flame-Retardant Polyurethane Foams: One-Pot, Bioinspired Silica Nanoparticle Coating

被引:32
作者
Brannum, Daniel J. [1 ]
Price, Erik J. [1 ]
Villamil, Daniel [1 ]
Kozawa, Susan [1 ]
Brannum, Michelle [1 ]
Berry, Cindy [1 ]
Semco, Robert [1 ]
Wnek, Gary E. [1 ]
机构
[1] Case Western Reserve Univ, Dept Macromol Sci & Engn, Cleveland, OH 44106 USA
关键词
flame-retardant materials; sol-gel coatings; biomimicry; bioinspired; polyurethane foam; scalable; MECHANISM;
D O I
10.1021/acsapm.9b00283
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The replacement of halogen-free flame retardants, driven by health concerns, has sparked a large demand for new "green" flame-retardant alternatives. Inspired by the natural flame-retardant properties of Cladophora sp. algae coated with silica diatoms, a silica sol-gel method has been employed to improve the fire resistance of common, open-cell polyurethane (PU) foams. The Stober process with components 2-propanol, water, tetraethyl orthosilicate (TEOS), and ammonium hydroxide was employed for silica nanoparticle synthesis on the inside walls and struts of PU foam. Upon ignition, the treated foams briefly burn, followed by formation of a propagating char front that leads to self-extinguishment. Most importantly, the coating of silica nanoparticles prevents dripping of flaming residues seen in common untreated PU foams. Microcomputerized tomography of silica-treated foam after burning reveals that char formation is confined to the outer edges of the bulk foam. Via cone calorimetry, the peak heat release rate of a 0.5 M TEOS foam was reported as dropping from 560 to 262 kW/m(2), relative to untreated foam. These results, coupled with the ease of application of the silica coatings, suggest a viable and scalable approach to the mitigation of burning of common open-cell PU foams.
引用
收藏
页码:2015 / 2022
页数:15
相关论文
共 20 条
[1]  
[Anonymous], 2013, 94 UL
[2]   Fire retardant sol-gel coated polyurethane foam: Mechanism of action [J].
Bellayer, S. ;
Jimenez, M. ;
Prieur, B. ;
Dewailly, B. ;
Ramgobin, A. ;
Sarazin, J. ;
Revel, B. ;
Tricot, G. ;
Bourbigot, S. .
POLYMER DEGRADATION AND STABILITY, 2018, 147 :159-167
[3]   Silica-based nanoparticles for biomedical applications [J].
Bitar, Ahmad ;
Ahmad, Nasir M. ;
Fessi, Hatem ;
Elaissari, Abdelhamid .
DRUG DISCOVERY TODAY, 2012, 17 (19-20) :1147-1154
[4]  
Capeletti LB, 2018, MICRO NANO TECHNOL, P115, DOI 10.1016/B978-0-12-814156-4.00008-2
[5]   Thermal stability and flame retardancy of polyurethanes [J].
Chattopadhyay, D. K. ;
Webster, Dean C. .
PROGRESS IN POLYMER SCIENCE, 2009, 34 (10) :1068-1133
[6]   Functionalized Silica Nanoparticles As an Alternative Platform for Targeted Drug-Delivery of Water Insoluble Drugs [J].
de Oliveira, Luciane Franca ;
Bouchmella, Karim ;
Goncalves, Kaliandra de Almeida ;
Bettini, Jefferson ;
Kobarg, Joerg ;
Cardoso, Mateus Borba .
LANGMUIR, 2016, 32 (13) :3217-3225
[7]   Mechanism of interaction between colloids and bacteria as evidenced by tailored silica-lysozyme composites [J].
de Oliveira, Luciane Franca ;
Goncalves, Kaliandra de Almeida ;
Boreli, Fabio Henrique ;
Kobarg, Joerg ;
Cardoso, Mateus Borba .
JOURNAL OF MATERIALS CHEMISTRY, 2012, 22 (43) :22851-22858
[8]   MECHANISM OF THERMAL-DEGRADATION OF POLYURETHANE BASED ON MDI AND PROPOXYLATED TRIMETHYLOL PROPANE [J].
GABORIAUD, F ;
VANTELON, JP .
JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 1982, 20 (08) :2063-2071
[9]   Flame retardant activity of SiO2-coated regenerated cellulose fibres [J].
Hribernik, Silvo ;
Smole, Majda Sfiligoj ;
Kleinschek, Karin Stana ;
Bele, Marjan ;
Jamnik, Janez ;
Gaberscek, Miran .
POLYMER DEGRADATION AND STABILITY, 2007, 92 (11) :1957-1965
[10]   In-depth study on the gene silencing capability of silica nanoparticles with different pore sizes: degree and duration of RNA interference [J].
Kim, Seongchan ;
Na, Hee-Kyung ;
Won, Cheolhee ;
Min, Dal-Hee .
RSC ADVANCES, 2016, 6 (32) :27143-27150