[go: up one dir, main page]
More Web Proxy on the site http://driver.im/

Rabbani et al., 2012 - Google Patents

High CO 2 uptake and selectivity by triptycene-derived benzimidazole-linked polymers

Rabbani et al., 2012

View PDF
Document ID
4809861478716491461
Author
Rabbani M
Reich T
Kassab R
Jackson K
El-Kaderi H
Publication year
Publication venue
Chemical Communications

External Links

Snippet

High CO 2 uptake and selectivity by triptycene-derived benzimidazole-linked polymers - Chemical Communications (RSC Publishing) DOI:10.1039/C2CC16986J Royal Society of Chemistry View PDF VersionPrevious ArticleNext Article DOI: 10.1039/C2CC16986J (Communication) …
Continue reading at www.researchgate.net (PDF) (other versions)

Similar Documents

Publication Publication Date Title
Rabbani et al. High CO 2 uptake and selectivity by triptycene-derived benzimidazole-linked polymers
Rabbani et al. Pyrene-directed growth of nanoporous benzimidazole-linked nanofibers and their application to selective CO 2 capture and separation
Mukherjee et al. Newly designed 1, 2, 3-triazole functionalized covalent triazine frameworks with exceptionally high uptake capacity for both CO 2 and H 2
Reich et al. Highly selective CO 2/CH 4 gas uptake by a halogen-decorated borazine-linked polymer
Ullah et al. Insights of CO2 adsorption performance of amine impregnated mesoporous silica (SBA-15) at wide range pressure and temperature conditions
Zhao et al. Target synthesis of a novel porous aromatic framework and its highly selective separation of CO 2/CH 4
Zou et al. Porous organic polymers for post‐combustion carbon capture
Rabbani et al. Benzothiazole-and benzoxazole-linked porous polymers for carbon dioxide storage and separation
Mondal et al. Triptycene based 1, 2, 3-triazole linked network polymers (TNP s): small gas storage and selective CO 2 capture
Buyukcakir et al. Synthesis of porous covalent quinazoline networks (CQNs) and their gas sorption properties
Sekizkardes et al. Application of pyrene-derived benzimidazole-linked polymers to CO 2 separation under pressure and vacuum swing adsorption settings
Ma et al. Post-metalation of porous aromatic frameworks for highly efficient carbon capture from CO 2+ N 2 and CH 4+ N 2 mixtures
Jackson et al. Synthesis of highly porous borazine-linked polymers and their application to H 2, CO 2, and CH 4 storage
Dang et al. An azo-linked porous triptycene network as an absorbent for CO 2 and iodine uptake
Arab et al. Synthesis and evaluation of porous azo-linked polymers for carbon dioxide capture and separation
Kahveci et al. Targeted synthesis of a mesoporous triptycene-derived covalent organic framework
Dey et al. Covalent triazine-based frameworks (CTFs) from triptycene and fluorene motifs for CO 2 adsorption
Byun et al. Nanoporous covalent organic polymers incorporating Tröger's base functionalities for enhanced CO 2 capture
Dawson et al. Chemical tuning of CO 2 sorption in robust nanoporous organic polymers
Lu et al. Facile synthesis of azo-linked porous organic frameworks via reductive homocoupling for selective CO 2 capture
Zhang et al. A new microporous carbon material synthesized via thermolysis of a porous aromatic framework embedded with an extra carbon source for low-pressure CO 2 uptake
Tian et al. Cucurbit [7] uril: an amorphous molecular material for highly selective carbon dioxide uptake
Song et al. Nitrogen-rich diaminotriazine-based porous organic polymers for small gas storage and selective uptake
Khutia et al. Programming MIL-101Cr for selective and enhanced CO 2 adsorption at low pressure by postsynthetic amine functionalization
Ben et al. Gas storage in porous aromatic frameworks (PAFs)