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The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation

Functional nanoporous materials are widely explored for CO(2) separation, in particular, small-pore aluminosilicate zeolites having a “trapdoor” effect. Such an effect allows the specific adsorbate to push away the sited cations inside the window followed by exclusive admission to the zeolite pores,...

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Autores principales: Wang, Xiaohe, Yan, Nana, Xie, Miao, Liu, Puxu, Bai, Pu, Su, Haopeng, Wang, Binyu, Wang, Yunzheng, Li, Libo, Cheng, Tao, Guo, Peng, Yan, Wenfu, Yu, Jihong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8246083/
https://www.ncbi.nlm.nih.gov/pubmed/34257880
http://dx.doi.org/10.1039/d1sc00619c
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author Wang, Xiaohe
Yan, Nana
Xie, Miao
Liu, Puxu
Bai, Pu
Su, Haopeng
Wang, Binyu
Wang, Yunzheng
Li, Libo
Cheng, Tao
Guo, Peng
Yan, Wenfu
Yu, Jihong
author_facet Wang, Xiaohe
Yan, Nana
Xie, Miao
Liu, Puxu
Bai, Pu
Su, Haopeng
Wang, Binyu
Wang, Yunzheng
Li, Libo
Cheng, Tao
Guo, Peng
Yan, Wenfu
Yu, Jihong
author_sort Wang, Xiaohe
collection PubMed
description Functional nanoporous materials are widely explored for CO(2) separation, in particular, small-pore aluminosilicate zeolites having a “trapdoor” effect. Such an effect allows the specific adsorbate to push away the sited cations inside the window followed by exclusive admission to the zeolite pores, which is more advantageous for highly selective CO(2) separation. Herein, we demonstrated that the protonated organic structure-directing agent in the small-pore silicoaluminophosphate (SAPO) RHO zeolite can be directly exchanged with Na(+), K(+), or Cs(+) and that the Na(+) form of SAPO-RHO exhibited unprecedented separation for CO(2)/CH(4), superior to all of the nanoporous materials reported to date. Rietveld refinement revealed that Na(+) is sited in the center of the single eight-membered ring (s8r), while K(+) and Cs(+) are sited in the center of the double 8-rings (d8rs). Theoretical calculations showed that the interaction between Na(+) and the s8r in SAPO-RHO was stronger than that in aluminosilicate RHO, giving an enhanced “trapdoor” effect and record high selectivity for CO(2) with the separation factor of 2196 for CO(2)/CH(4) (0.02/0.98 bar). The separation factor of Na-SAPO-RHO for CO(2)/N(2) was 196, which was the top level among zeolitic materials. This work opens a new avenue for gas separation by using diverse silicoaluminophosphate zeolites in terms of the cation-tailored “trapdoor” effect.
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spelling pubmed-82460832021-07-12 The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation Wang, Xiaohe Yan, Nana Xie, Miao Liu, Puxu Bai, Pu Su, Haopeng Wang, Binyu Wang, Yunzheng Li, Libo Cheng, Tao Guo, Peng Yan, Wenfu Yu, Jihong Chem Sci Chemistry Functional nanoporous materials are widely explored for CO(2) separation, in particular, small-pore aluminosilicate zeolites having a “trapdoor” effect. Such an effect allows the specific adsorbate to push away the sited cations inside the window followed by exclusive admission to the zeolite pores, which is more advantageous for highly selective CO(2) separation. Herein, we demonstrated that the protonated organic structure-directing agent in the small-pore silicoaluminophosphate (SAPO) RHO zeolite can be directly exchanged with Na(+), K(+), or Cs(+) and that the Na(+) form of SAPO-RHO exhibited unprecedented separation for CO(2)/CH(4), superior to all of the nanoporous materials reported to date. Rietveld refinement revealed that Na(+) is sited in the center of the single eight-membered ring (s8r), while K(+) and Cs(+) are sited in the center of the double 8-rings (d8rs). Theoretical calculations showed that the interaction between Na(+) and the s8r in SAPO-RHO was stronger than that in aluminosilicate RHO, giving an enhanced “trapdoor” effect and record high selectivity for CO(2) with the separation factor of 2196 for CO(2)/CH(4) (0.02/0.98 bar). The separation factor of Na-SAPO-RHO for CO(2)/N(2) was 196, which was the top level among zeolitic materials. This work opens a new avenue for gas separation by using diverse silicoaluminophosphate zeolites in terms of the cation-tailored “trapdoor” effect. The Royal Society of Chemistry 2021-05-13 /pmc/articles/PMC8246083/ /pubmed/34257880 http://dx.doi.org/10.1039/d1sc00619c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Xiaohe
Yan, Nana
Xie, Miao
Liu, Puxu
Bai, Pu
Su, Haopeng
Wang, Binyu
Wang, Yunzheng
Li, Libo
Cheng, Tao
Guo, Peng
Yan, Wenfu
Yu, Jihong
The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation
title The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation
title_full The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation
title_fullStr The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation
title_full_unstemmed The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation
title_short The inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective CO(2) separation
title_sort inorganic cation-tailored “trapdoor” effect of silicoaluminophosphate zeolite for highly selective co(2) separation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8246083/
https://www.ncbi.nlm.nih.gov/pubmed/34257880
http://dx.doi.org/10.1039/d1sc00619c
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