Cargando…

Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T

Because of containing the same double 6-ring (D6R) building unit, the pure zeolite CHA with lower framework density (FD(Si) = 15.1 T/1000 Å(3)) has been transformed from zeolite T with higher framework density (FD(Si) = 16.1 T/1000 Å(3)) through ultrasonic-pretreated hydrothermal synthesis in MOH (K...

Descripción completa

Detalles Bibliográficos
Autores principales: Yin, Xiaoyan, Liu, Ning, Han, Muhua, Xu, Fan, Jia, Yun, Song, Feng, Cui, Hongyou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10511489/
https://www.ncbi.nlm.nih.gov/pubmed/37722248
http://dx.doi.org/10.1016/j.ultsonch.2023.106598
_version_ 1785108152095604736
author Yin, Xiaoyan
Liu, Ning
Han, Muhua
Xu, Fan
Jia, Yun
Song, Feng
Cui, Hongyou
author_facet Yin, Xiaoyan
Liu, Ning
Han, Muhua
Xu, Fan
Jia, Yun
Song, Feng
Cui, Hongyou
author_sort Yin, Xiaoyan
collection PubMed
description Because of containing the same double 6-ring (D6R) building unit, the pure zeolite CHA with lower framework density (FD(Si) = 15.1 T/1000 Å(3)) has been transformed from zeolite T with higher framework density (FD(Si) = 16.1 T/1000 Å(3)) through ultrasonic-pretreated hydrothermal synthesis in MOH (KOH and NaOH) solution without adding organic template or seed crystals. Ultrasonic pretreatment facilitates the transformation rate and generates high-quality zeolite CHA. The ultrasound condition should be precisely controlled because that CHA phase is metastable, which is inclined to transform to other more stable phase. The ultrasonic conditions at 313 K and 333 K have been investigated in detail. In KOH solution, the ultrasonic treatment at 313 K can effectively restrain the generation of MER phase, however, it is hard to avoid the existence of MER phase when ultrasound temperature is 333 K. In NaOH solution, the samples with ultrasonic treatment of 313 K show the small particles size of about 1 μm, and the GIS framework topology starts to grow with the ultrasonic treatment of 333 K. The products prepared with the appropriate ultrasonic pretreatment represents smaller particles size, larger mesopore volume and higher CO(2) adsorption capacity than the sample without the ultrasonic pretreatment. The structural evolution of interzeolite transformation has been explored by XRD, FT-IR and SEM observations. With the assistance of ultrasound, the parent zeolite T can quickly decompose into intermediate phase and then regenerate into CHA phase.
format Online
Article
Text
id pubmed-10511489
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-105114892023-09-22 Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T Yin, Xiaoyan Liu, Ning Han, Muhua Xu, Fan Jia, Yun Song, Feng Cui, Hongyou Ultrason Sonochem Original Research Article Because of containing the same double 6-ring (D6R) building unit, the pure zeolite CHA with lower framework density (FD(Si) = 15.1 T/1000 Å(3)) has been transformed from zeolite T with higher framework density (FD(Si) = 16.1 T/1000 Å(3)) through ultrasonic-pretreated hydrothermal synthesis in MOH (KOH and NaOH) solution without adding organic template or seed crystals. Ultrasonic pretreatment facilitates the transformation rate and generates high-quality zeolite CHA. The ultrasound condition should be precisely controlled because that CHA phase is metastable, which is inclined to transform to other more stable phase. The ultrasonic conditions at 313 K and 333 K have been investigated in detail. In KOH solution, the ultrasonic treatment at 313 K can effectively restrain the generation of MER phase, however, it is hard to avoid the existence of MER phase when ultrasound temperature is 333 K. In NaOH solution, the samples with ultrasonic treatment of 313 K show the small particles size of about 1 μm, and the GIS framework topology starts to grow with the ultrasonic treatment of 333 K. The products prepared with the appropriate ultrasonic pretreatment represents smaller particles size, larger mesopore volume and higher CO(2) adsorption capacity than the sample without the ultrasonic pretreatment. The structural evolution of interzeolite transformation has been explored by XRD, FT-IR and SEM observations. With the assistance of ultrasound, the parent zeolite T can quickly decompose into intermediate phase and then regenerate into CHA phase. Elsevier 2023-09-14 /pmc/articles/PMC10511489/ /pubmed/37722248 http://dx.doi.org/10.1016/j.ultsonch.2023.106598 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research Article
Yin, Xiaoyan
Liu, Ning
Han, Muhua
Xu, Fan
Jia, Yun
Song, Feng
Cui, Hongyou
Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T
title Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T
title_full Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T
title_fullStr Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T
title_full_unstemmed Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T
title_short Ultrasonic-pretreated hydrothermal synthesis of less dense zeolite CHA from the transformation of zeolite T
title_sort ultrasonic-pretreated hydrothermal synthesis of less dense zeolite cha from the transformation of zeolite t
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10511489/
https://www.ncbi.nlm.nih.gov/pubmed/37722248
http://dx.doi.org/10.1016/j.ultsonch.2023.106598
work_keys_str_mv AT yinxiaoyan ultrasonicpretreatedhydrothermalsynthesisoflessdensezeolitechafromthetransformationofzeolitet
AT liuning ultrasonicpretreatedhydrothermalsynthesisoflessdensezeolitechafromthetransformationofzeolitet
AT hanmuhua ultrasonicpretreatedhydrothermalsynthesisoflessdensezeolitechafromthetransformationofzeolitet
AT xufan ultrasonicpretreatedhydrothermalsynthesisoflessdensezeolitechafromthetransformationofzeolitet
AT jiayun ultrasonicpretreatedhydrothermalsynthesisoflessdensezeolitechafromthetransformationofzeolitet
AT songfeng ultrasonicpretreatedhydrothermalsynthesisoflessdensezeolitechafromthetransformationofzeolitet
AT cuihongyou ultrasonicpretreatedhydrothermalsynthesisoflessdensezeolitechafromthetransformationofzeolitet