共 34 条
Ultrafine nickel nanocatalyst-engineering of an organic layered double hydroxide towards a super-efficient fire-safe epoxy resin via interfacial catalysis
被引:124
作者:
Li, Zhi
[1
,2
]
Zhang, Junhao
[1
,3
]
Dufosse, Francois
[1
]
Wang, De-Yi
[1
]
机构:
[1] IMDEA Mat Inst, C Eric Kandel 2, Madrid 28906, Spain
[2] Univ Politecn Madrid, ETS Ingn Caminos, E-28040 Madrid, Spain
[3] Jiangsu Univ Sci & Technol, Sch Environm & Chem Engn, Zhenjiang 212018, Peoples R China
关键词:
FLAME RETARDANCY;
AMMONIUM POLYPHOSPHATE;
MECHANICAL PROPERTY;
CARBON NANOTUBES;
HIGHLY EFFICIENT;
CARBONIZATION;
NANOCOMPOSITES;
NANOSPHERES;
HALLOYSITE;
COMPOSITE;
D O I:
10.1039/c8ta00910d
中图分类号:
O64 [物理化学(理论化学)、化学物理学];
学科分类号:
070304 ;
081704 ;
摘要:
Aiming to impart epoxy resin (EP) with super-efficient fire safety, organically modified layered double hydroxide (LDH-DBS) nanosheets were surface-assembled by an ultrafine Ni(OH)(2) nanocatalyst via circular coordination-induced growth. LDH-DBS@Ni(OH)(2) was designed to exploit a spatial-dependent catalytic strategy to strengthen the interfacial structure between the LDH nanosheets and the EP matrix during a dynamic charring process. Adaquate characterization verified the successful preparation of LDH-DBS@Ni(OH)(2), with Ni(OH)(2) nanocrystals uniformly distributed on the LDH nanosheets. LDHDBS@ Ni(OH)(2) presented better nano-dispersion in an EP matrix relative to LDH-DBS. The results illustrate that a mere 3 wt% of LDH-DBS@Ni(OH)(2) imparted the EP matrix with a value of UL-94 V-0. The peak heat release rate and total smoke production at 200 s were reduced by 60.6% and 66.5%, respectively, upon the addition of 3 wt% LDH-DBS@Ni(OH)(2), accompanied by tremendously suppressed CO production. In parallel, the thermal degradation analysis revealed that the interfacial growth of the Ni(OH)(2) nanocatalyst resulted in a significant reduction in volatiles, including CO, and aliphatic and aromatic compounds. A further investigation of the mechanism by dynamic charring analysis revealed the remarkable contribution of interfacial-charring catalysis to the reinforcement of the intumescent char structure and fire safety. In perspective, the interfacial-catalytic assembly of nanomaterials without traditional fire-retardant elements opens up a novel window and scale-up prospects for the production of polymers with super-efficient fire safety properties.
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页码:8488 / 8498
页数:11
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