4.7 Article

Engineering MXene surface with POSS for reducing fire hazards of polystyrene with enhanced thermal stability

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 401, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jhazmat.2020.123342

关键词

MXene; Polyhedral oligomeric silsesquioxane; Surface manipulation; Polystyrene; Thermal stability; Fire safety

资金

  1. Australia Research Council [DE190101176, DP190102992, FT190100188]
  2. National Natural Science Foundation of China [51403048]
  3. Program of Anhui Province for Outstanding Talents in University [gxyqZD2019085]
  4. Anhui Provincial Natural Science Foundation for Distinguished Young Scholar [2008085J26]
  5. Australian Research Council [DE190101176] Funding Source: Australian Research Council

向作者/读者索取更多资源

A facile strategy was reported for surface manipulation of Ti3C2Tx with AP-POSS, resulting in POSS-Ti3C2Tx that showed significantly improved thermal and flame retardant properties when incorporated into PS nanocomposites. The outstanding fire safety was attributed to the combination of adsorption, catalytic and barrier effects of POSS-Ti3C2Tx, making it attractive for wide potential applications.
High-performance MXene-based polymer nanocomposites are highly desirable for diverse industry applications due to their exceptional mechanical, thermal and other properties. Nevertheless, it remains an intractable challenge to create flame retardant polymer/MXene nanocomposites due to the difficulty to achieve uniform dispersion of MXenes. Here, we reported a facile strategy for the surface manipulation of two-dimensional titanium carbide nanosheets (Ti3C2Tx) with 3-aminopropylheptaisobutyl-polyhedral oligomeric silsesquioxane (AP-POSS) (POSS-Ti3C2Tx) through electrostatic interactions. The POSS-Ti3C2Tx is steadily dispersed in many polar solvents. Upon incorporated into polystyrene (PS), the combined effect of AP-POSS and MXene makes the resultant PS nanocomposites exhibit significantly improved thermal and thermoxidative stability, e.g. 22 degrees C and 39 degrees C increases in the temperature at 5 wt% mass loss under nitrogen and air, respectively. Meanwhile, a 39.1 % reduction in the peak heat release rate, a respective 54.4 % and 35.6 % reduction in the peak CO production rate and the peak CO2 production rate was achieved, which are superior to those of its own and previous counter-parts. This outstanding fire safety is attributed to the combination of adsorption, catalytic and barrier effects of POSS-Ti3C2Tx. Hence, as-designed functionalized MXenes can be effectively applied in PS to formulate multifunctional polymer nanocomposites attractive for wide potential applications.

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