粉煤灰协同赤泥合成沸石及其吸附性能研究

Synthesis of zeolite from fly ash with red mud and its adsorption performance

  • 摘要: 为富集利用赤泥和粉煤灰中硅、铝等有价元素,采用碱熔-水热法合成沸石。结合XRD、SEM-EDS表征,系统考察了硅铝摩尔比(n(Si)∶n(Al))、水热晶化温度和时间对赤泥-粉煤灰基沸石合成的影响。通过低温氮吸附静态容量法测定了样品的BET比表面积与孔径分布,并结合Cu2+吸附实验,评价了所合成沸石的吸附性能。结果表明,在n(Si)∶n(Al)为1∶0.70~1∶0.60范围内,提高硅铝比有利于P1型沸石的生成。需严格控制水热晶化温度,温度过低不利于晶核形成,过高则易导致晶粒粗大并引发晶型转变;晶化时间则影响沸石的结晶度与晶粒尺寸。在n(Si)∶n(Al)=1∶0.65、晶化温度为100 ℃、时间为10 h的条件下,可同时获得结晶良好的P1型沸石、八面沸石和X型沸石,该条件下合成的沸石对N2和Cu2+表现出较优的吸附性能。当沸石投加量为3.0 g/L时,对Cu2+的吸附效率随温度升高而提升,当温度为60 ℃时对Cu2+的吸附率可达98.04%,表明该材料在温和条件下即可实现高效重金属去除,为赤泥与粉煤灰的高值化利用提供了可行路径。

     

    Abstract: In order to enrich and utilize the valuable elements of silicon and aluminum in red mud and fly ash, zeolite was synthesized by the alkali melting-hydrothermal method. By integrating X-ray diffraction (XRD) and scanning electron microscopy with energy dispersive spectroscopy (SEM-EDS), the effects of the molar ratio of silicon-to-aluminum (n(Si)∶n(Al)), hydrothermal crystallization temperature and duration on the synthesis of red mud-fly ash-derived zeolite were systematically investigated. The BET specific surface area and pore size distribution of the samples were determined by the low-temperature nitrogen adsorption static capacity method. Combined with Cu2+ adsorption experiments, the adsorption performance of the synthesized zeolite was systematically evaluated. The results showed that with the n(Si)∶n(Al) range of 1∶0.70 to 1∶0.60, increasing the silicon-aluminum ratio was conducive to the generation of P1 zeolite. The temperature of hydrothermal crystallization should be strictly controlled. A temperature that was too low hindered the formation of crystal nuclei, whereas an excessively high temperature might lead to coarse grain development and induce phase transformation. The duration of crystallization significantly influenced both the crystallinity and grain size of the synthesized zeolites. Under the conditions of n(Si)∶n(Al)=1∶0.65, a crystallization temperature of 100 ℃, and a duration of 10 h, well-crystallized P1 zeolite, faujasite zeolite and X zeolite were simultaneously obtained. The synthesized zeolite exhibited excellent nitrogen adsorption performance and Cu2+ adsorption capacity. When the amount of zeolite was 3.0 g/L, the adsorption efficiency increased with temperature, and the adsorption rate for Cu2+ at 60 ℃ reached 98.04%. This indicated that the material could achieve high-efficiency removal of heavy metals under mild conditions, providing a feasible path for the high-value utilization of red mud and fly ash.

     

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