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Tailored Catalysis Inducing Exceptionally Fire-Safe and Mechanically Reinforced Epoxy at An Ultralow Loading.
Bi, Qing-Qing; Zhang, Lei; Li, Zhi; Tang, En; Hu, Bingbing; Tian, Song; Zeng, Qingwen; Hobson, Jose; Wang, De-Yi.
Affiliation
  • Bi QQ; College of Civil Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
  • Zhang L; China-Spain Collaborative Research Center for Advanced Materials (CSCRC), College of Materials Science and Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
  • Li Z; China-Spain Collaborative Research Center for Advanced Materials (CSCRC), College of Materials Science and Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
  • Tang E; China-Spain Collaborative Research Center for Advanced Materials (CSCRC), College of Materials Science and Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
  • Hu B; China-Spain Collaborative Research Center for Advanced Materials (CSCRC), College of Materials Science and Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
  • Tian S; China-Spain Collaborative Research Center for Advanced Materials (CSCRC), College of Materials Science and Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
  • Zeng Q; China-Spain Collaborative Research Center for Advanced Materials (CSCRC), College of Materials Science and Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
  • Hobson J; Chongqing Polycomp International Corporation, Chongqing 400082, China.
  • Wang DY; IMDEA Materials Institute, C/Eric Kandel 2, Getafe, 28906 Madrid, Spain.
ACS Appl Mater Interfaces ; 15(51): 59838-59853, 2023 Dec 27.
Article in En | MEDLINE | ID: mdl-38105599
ABSTRACT
An unconventional P/N/Si-free fire safety of epoxy at an ultralow loading with a significantly improved mechanical robustness and toughness via a mere nanocomposite technique is a great challenge. To achieve the goal, a proof of concept is proposed associated with a hierarchical manipulation of catalysis-tailored FexSy ultrathin nanosheets on organic-layered double hydroxide (LDH-DBS@FexSy) toward the formation of porous piling structure via a self-sacrificing conversion of metal-organic framework. A sufficient characterization certified the targeted architecture and composition. A P/N/Si-free ultralow loading of 2 wt % LDH-DBS@FexSy (i.e., 0.6 wt % FexSy) imparted epoxy with UL-94 V-0 rating, a 36.1% reduction of peak heat release rate, as well as a pronounced fire-protection feature. A systematic contrastive investigation evidenced a time-dependent fire-shielding effect induced by a featured catalysis-tailored ultrafast charring behavior at the interface of epoxy and LDH nanosheets. Intriguingly, the tensile strength, impact strength, and flexural strength were simultaneously enhanced by 62.2, 185.4, and 62.9%, respectively, with a 0.6 wt % incorporation of FexSy hierarchy on the basis of a "root-soil"-inspired interfacial "interlocking" structure. In perspective, an integrated manipulation of an interface catalysis-tailored ultrafast charring and hierarchical "interlocking" construction offer an effective balance of the fire safety, mechanical robustness, and toughness of polymers.
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Full text: 1 Database: MEDLINE Language: En Journal: ACS Appl Mater Interfaces Journal subject: BIOTECNOLOGIA / ENGENHARIA BIOMEDICA Year: 2023 Type: Article Affiliation country: China

Full text: 1 Database: MEDLINE Language: En Journal: ACS Appl Mater Interfaces Journal subject: BIOTECNOLOGIA / ENGENHARIA BIOMEDICA Year: 2023 Type: Article Affiliation country: China