沸石咪唑酸框架-8纳米颗粒的可持续合成及其在药物氯己定吸附中的应用

Heloísa Maria Oliveira, Francisco Alex De Sousa Silva, Tellys Lins Almeida Barbosa, Meiry Gláucia Freire Rodrigues
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引用次数: 0

摘要

在化学纳米材料合成方面,通过对废母液的回收利用,探索了低成本可持续合成沸石咪唑酸框架-8 (ZIF-8)纳米颗粒的方法,并指出了其去除水溶液中氯己定(CHLX)的潜力。ZIF-8是在25°C溶剂热反应下合成的,并通过傅里叶变换红外光谱、x射线衍射、N2吸附/解吸、动态光散射和接触角对其进行了表征。用ZIF-8进行化学稳定性试验,室温下在纯水中浸泡24 h。采用批量吸附法考察zf -8(第一代和第二代)在初始氯己定浓度(0.05、0.06和0.07 mol/L)、搅拌时间(1、3.5和6 h)和纳米吸附剂质量(0.04、0.05和0.06 g)条件下对氯己定的吸附潜力,并通过析因实验设计对工艺进行优化。以纳米吸附剂质量为0.04 g,搅拌时间为1 h,初始氯己定浓度为0.07 mmol/L为最佳条件。ZIF-8的可持续合成是高效的,并生成了晶体纳米材料。结果表明,ZIF-8在环境条件下在水中是稳定的。ZIF-8第一代和第二代的吸附量分别为27.17 mg/g和30.96 mg/g。研究发现,在合成条件下,回收母液用量对该纳米材料的最终性能没有影响。结果表明,氯己定初始浓度和纳米吸附剂质量对吸附量有影响。实验设计确定了最佳工艺条件(1 h,吸附剂质量0.04 g,吸附剂质量0.07 mmol/L)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sustainable Synthesis of Zeolitic Imidazolate Framework-8 Nanoparticles and Application in the Adsorption of the Drug Chlorhexidine
In an attempt to synthesize nanomaterial concerning chemistry, the sustainable synthesis of Zeolitic Imidazolate Framework-8 (ZIF-8) nanoparticles by a low-cost approach through the recycling of waste mother liquors was explored and then indicated the potential to remove chlorhexidine (CHLX) from an aqueous solution. ZIF-8 was produced under solvothermal reaction at 25°C and characterized by Fourier Transform Infrared Spectroscopy, X-ray diffraction, adsorption/desorption of N2, dynamic light scattering and contact angle. The water Chemical stability test was conducted using ZIF-8 and it was immersed in pure water for 24 h at room temperature. Batch-type adsorption was used to check the potential of ZIF-8 (first and second generation) for the adsorption of the chlorhexidine with initial chlorhexidine concentration (0.05, 0.06 and 0.07 mol/L), agitation time (1, 3.5 and 6 h) and the mass of nano-adosrbent (0.04, 0.05 and 0.06 g). Process optimization was performed through a Factorial experimental design. The optimum conditions were selected for the nano-adsorbent mass of 0.04 g, agitation time of 1 h and initial chlorhexidine concentration 0.07 mmol/L. The ZIF-8 sustainable synthesis was efficient and generated a crystalline nanomaterial. The result shows that ZIF-8 is stable in water under ambient conditions. The ZIF-8 first generation and ZIF-8 second generation exhibit a high adsorption capacity (27.17 mg/g and 30.96 mg/g). It was found that, under the synthesis conditions, the recycled mother liquor user did not affect the final characteristics of this nanomaterial. The results indicated that the initial concentration of chlorhexidine and nano-adsorbent mass influenced the adsorption capacity. Experimental design provided the process optimum conditions (1 h, 0.04 g of adsorbent mass and 0.07 mmol/L).
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