...
首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Ultrafine nickel nanocatalyst-engineering of an organic layered double hydroxide towards a super-efficient fire-safe epoxy resin via interfacial catalysis
【24h】

Ultrafine nickel nanocatalyst-engineering of an organic layered double hydroxide towards a super-efficient fire-safe epoxy resin via interfacial catalysis

机译:超细镍纳米催化剂 - 通过界面催化朝向超高效的防火环氧树脂朝向超高效的防火环氧树脂

获取原文
获取原文并翻译 | 示例
           

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.
机译:旨在通过超高效的火灾安全赋予环氧树脂(EP),通过圆形配位诱导的生长,通过超细Ni(OH)(2)纳米催化来表面组装有机改性的层状双氢氧化物(LDH-DBS)纳米晶片。 LDH-DBS @ Ni(OH)(2)被设计为利用空间依赖性催化策略,以在动态炭化过程中加强LDH纳米片和EP矩阵之间的界面结构。 ADAquate表征验证了LDH-DBS @ Ni(OH)(2)的成功制备,Ni(OH)(2)纳米晶体均匀分布在LDH纳米液上。 LDHDBS @ Ni(OH)(2)相对于LDH-DBS在EP矩阵中呈现更好的纳米分散体。结果说明MER 3 WT%的LDH-DBS @ Ni(OH)(2)赋予EP矩阵,具有UL-94 V-0的值。在加入3wt%LDH-DBS @ Ni(OH)(2)时,200秒的峰值热释放速率和200秒的总烟雾产量分别降低了60.6%和66.5%,伴随着巨大抑制的CO生产。并行地,热降解分析表明,Ni(OH)(2)纳米催化剂的界面生长导致挥发物的显着降低,包括CO和脂族和芳族化合物。通过动态致密分析进一步调查该机制,揭示了界面催化催化与膨胀型炭结构和防火安全的增强贡献。在透视程中,没有传统的阻燃元件的纳米材料的界面催化组件开辟了一种新颖的窗口和扩大的前景,用于生产具有超高效的消防安全性的聚合物。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号