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用于制备具有花状形态和更薄纳米片的斜发沸石随机薄片的两亲性溶剂辅助合成策略,用于CO和CH的吸附与分离

Amphipathic Solvent-Assisted Synthetic Strategy for Random Lamellae of the Clinoptilolites with Flower-like Morphology and Thinner Nanosheet for Adsorption and Separation of CO and CH.

作者信息

Zhou Jiawei, Jia Bingying, Xu Bang, Sun Jihong, Bai Shiyang

机构信息

Beijing Key Laboratory for Green Catalysis and Separation, Department of Chemical Engineering, Beijing University of Technology, Beijing 100021, China.

出版信息

Nanomaterials (Basel). 2023 Jun 26;13(13):1942. doi: 10.3390/nano13131942.

Abstract

The random lamellae of the synthetic CP were synthesized with a hydrothermal approach using o-Phenylenediamine (OPD) as a modifier. The decreases in the order degree of the CP synthesized in the presence of the OPD resulted from the loss of long-range order in a certain direction. Subsequently, the ultrasonic treatment and washing were conducive to further facilitate the disordered arrangements of its lamellae. The possible promotion mechanism regarding the nucleation and growth behaviors of the sol-gel particles was proposed. The fractal evolutions of the aluminosilicate species with crystallization time implied that the aluminosilicate species became gradually smooth to rough during the crystallization procedures since the amorphous structures transformed into flower-like morphologies. Their gas adsorption and separation performances indicated that the adsorption capacity of CO at 273 K reached up to 2.14 mmol·g at 1 bar, and the selective factor (CO/CH) up to 3.4, much higher than that of the CPs synthesized without additive OPD. The breakthrough experiments displayed a longer breakthrough time and enhancement of CO uptake, showing better performance for CO/CH separation. The cycling test further highlighted their efficiency for CO/CH separation.

摘要

合成的CP的随机片层是采用水热法,以邻苯二胺(OPD)作为改性剂合成的。在OPD存在下合成的CP的有序度降低是由于在特定方向上失去了长程有序。随后,超声处理和洗涤有助于进一步促进其片层的无序排列。提出了关于溶胶-凝胶颗粒成核和生长行为的可能促进机制。铝硅酸盐物种随结晶时间的分形演化表明,在结晶过程中,由于无定形结构转变为花状形态,铝硅酸盐物种逐渐由光滑变为粗糙。它们的气体吸附和分离性能表明,在273K、1bar下,CO的吸附容量达到2.14mmol·g,选择性因子(CO/CH)高达3.4,远高于无添加剂OPD合成的CP。突破实验显示出更长的突破时间和CO吸收量的增加,表明其在CO/CH分离方面具有更好的性能。循环测试进一步突出了它们在CO/CH分离方面的效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c130/10343432/043066eb532c/nanomaterials-13-01942-g001.jpg

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