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Functionalization of MXene Nanosheets for Polystyrene towards High Thermal Stability and Flame Retardant Properties

机译:MXene纳米片用于聚苯乙烯的功能化具有较高的热稳定性和阻燃性

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摘要

Fabricating high-performance MXene-based polymer nanocomposites is a huge challenge because of the poor dispersion and interfacial interaction of MXene nanosheets in the polymer matrix. To address the issue, MXene nanosheets were successfully exfoliated and subsequently modified by long-chain cationic agents with different chain lengths, i.e., decyltrimethylammonium bromide (DTAB), octadecyltrimethylammonium bromide (OTAB), and dihexadecyldimethylammonium bromide (DDAB). With the long-chain groups on their surface, modified Ti3C2 (MXene) nanosheets were well dispersed in N,N-dimethylformamide (DMF), resulting in the formation of uniform dispersion and strong interfacial adhesion within a polystyrene (PS) matrix. The thermal stability properties of cationic modified Ti3C2/PS nanocomposites were improved considerably with the temperatures at 5% weight loss increasing by 20 °C for DTAB-Ti3C2/PS, 25 °C for OTAB-Ti3C2/PS and 23 °C for DDAB-Ti3C2/PS, respectively. The modified MXene nanosheets also enhanced the flame-retardant properties of PS. Compared to neat PS, the peak heat release rate (PHRR) was reduced by approximately 26.4%, 21.5% and 20.8% for PS/OTAB-Ti3C2, PS/DDAB-Ti3C2 and PS/DTAB-Ti3C2, respectively. Significant reductions in CO and CO2 productions were also obtained in the cone calorimeter test and generally lower pyrolysis volatile products were recorded by PS/OTAB-Ti3C2 compared to pristine PS. These property enhancements of PS nanocomposites are attributed to the superior dispersion, catalytic and barrier effects of Ti3C2 nanosheets.
机译:由于MXene纳米片在聚合物基质中的分散性和界面相互作用差,因此制造高性能的基于MXene的聚合物纳米复合材料是一项巨大的挑战。为了解决该问题,MXene纳米片成功剥离并随后通过具有不同链长的长链阳离子试剂进行改性,即癸基三甲基溴化铵(DTAB),十八烷基三甲基溴化铵(OTAB)和二十六烷基二甲基溴化铵(DDAB)。改性的Ti3C2(MXene)纳米片表面上带有长链基团,可以很好地分散在N,N-二甲基甲酰胺(DMF)中,从而在聚苯乙烯(PS)基质内形成均匀的分散体和牢固的界面附着力。阳离子改性的Ti3C2 / PS纳米复合材料的热稳定性得到了显着改善,其中5%失重时的温度对于DTAB-Ti3C2 / PS增加20°C,对于OTAB-Ti3C2 / PS增加25°C,对于DDAB-Ti增加23°C。分别为Ti3C2 / PS。改性的MXene纳米片还增强了PS的阻燃性能。与纯PS相比,PS / OTAB-Ti3C2,PS / DDAB-Ti3C2和PS / DTAB-Ti3C2的峰值放热率(PHRR)分别降低了约26.4%,21.5%和20.8%。在锥形量热仪测试中,CO和CO 2 的产生也显着减少,并且PS / OTAB-Ti 3 C 2记录的热解挥发物通常较低。 与原始PS相比。 PS纳米复合材料的这些性能增强归因于Ti 3 C 2 纳米片材的优异分散,催化和阻挡作用。

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