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Investigation of Thermal Behavior of Layered Double Hydroxides Intercalated with Carboxymethylcellulose Aiming Bio-Carbon Based Nanocomposites

机译:针对生物碳基纳米复合材料插入羧甲基纤维素层状双氢氧化物的热行为研究

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Carboxymethylcellulose (CMC), a polymer derived from biomass, was intercalated into layered double hydroxides (LDH) composed by M2+/Al3+ (M2Al-CMC, M = Mg or Zn) and evaluated as precursors for the preparation of biocarbon-based nanocomposites by pyrolysis. M2Al-CMC hybrids were obtained by coprecipitation and characterized by X ray diffraction (XRD), vibrational spectroscopies, chemical analysis, and thermal analysis coupled to mass spectrometry. Following, pyrolyzed materials obtained between 500–1000 °C were characterized by XRD, Raman spectroscopy, scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS). Above 600 °C, Raman spectra of all samples showed the presence of graphitic carbon, which plays a role in the degree of crystallinity of produced inorganic phases (for comparison purposes, M2Al-CO3 materials were investigated after calcination in the same experimental conditions). XRD patterns of Mg2Al-CMC pyrolyzed between 600–1000 °C showed poorly crystallized MgO and absence of spinel reflections, whereas for Zn2Al-CMC, it was observed well crystallized nanometric ZnO at 800 °C, and ZnAl2O4 and γ-Al2O3 phases at 1000 °C. Above 800 °C, the carbothermic reaction was noticed, transforming ZnO to zinc vapour. This study opens perspectives for nanocomposites preparation based on carbon and inorganic (mixed) oxides through precursors having organic-inorganic interactions at the nanoscale domain.
机译:羧甲基纤维素(CMC)是一种源自生物质的聚合物,被插入由M2 + / Al3 +(M2Al-CMC,M = Mg或Zn)组成的层状双氢氧化物(LDH)中,并被评估为通过热解制备生物碳基纳米复合材料的前体。通过共沉淀获得M2Al-CMC杂化物,并通过X射线衍射(XRD),振动光谱,化学分析和热分析与质谱联用对其进行表征。随后,通过XRD,拉曼光谱,扫描电子显微镜(SEM)和能量分散光谱(EDS)对在500–1000°C之间获得的热解材料进行了表征。在高于600°C时,所有样品的拉曼光谱显示存在石墨碳,这与所产生的无机相的结晶度有关(出于比较目的,在相同的实验条件下对M2Al-CO3材料进行煅烧后进行了研究)。在600–1000°C之间热解的Mg2Al-CMC的XRD图谱显示,MgO结晶不良且没有尖晶石反射,而Zn2Al-CMC在800°C时观察到结晶良好的纳米ZnO,在1000°C时观察到ZnAl2O4和γ-Al2O3相℃。高于800°C,发现发生了碳热反应,从而将ZnO转化为锌蒸气。这项研究为通过碳和无机(混合)氧化物通过在纳米级域具有有机-无机相互作用的前驱体制备纳米复合材料开辟了前景。

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