Harmonizing Between Chemical Functionality and Surface Area of Porous Organic Polymeric Nanotraps for Tuning Carbon Dioxide Capture

Author:

Deka Dhruba Jyoti12ORCID,Biswas Chandan12ORCID,Paul Ratul12ORCID,Xu Jiabin3,Huang Yining3,Dao Duy Quang45ORCID,Mondal John12ORCID

Affiliation:

1. Department of Catalysis & Fine Chemicals CSIR-Indian Institute of Chemical Technology Uppal Road Hyderabad 500 007 India

2. Academy of Scientific and Innovative Research (AcSIR) Ghaziabad 201002 India

3. Department of Chemistry The University of Western Ontario London Ontario N6A 5B7 Canada

4. Institute of Research and Development Duy Tan University Da Nang 550000 Vietnam

5. Faculty of Natural Sciences Duy Tan University Da Nang 550000 Vietnam

Abstract

AbstractThe energy sector has demonstrated significant enthusiasm for investigating post‐combustion CO2 capture, storage, and separation. However, the practical application of current porous adsorbents is impeded by challenges related to cost competitiveness, stability, and scalability. Intregation of heteroatoms in the porous organic polymers (POPs) dispense it more susceptible for CO2 adsorption to attenuate green house gases. In this regard, two hydroxy rich hypercrosslinked POPs, namely Ph/TtPOP have been developed by one‐pot condensation polymerization using a facile synthetic strategy. The high surface areas of both the Ph/TtPOP (1057 and 893 m2g−1, respectively), and the heteroatom functionality in the POP framework instigated us to explore our material for CO2 adsorption study. The CO2 uptake capacities in Ph/TtPOP are found to be 2.45 and 2.2 mmol g−1, at 273 K respectively. Further, in‐situ static 13C NMR experiment shows that CO2 molecules in TtPOP appear to be less mobile than those in PhPOP which probably due to the presence of triazine functional groups along with high abundant −OH groups in the TtPOP framework. An in‐depth study of the CO2 adsorption mechanism by density functional theory (DFT) calculations also shows that CO2 adsorption at the cages formed by two benzyl rings represents the most stable interaction and CO2 molecule is more favorably adsorbed on the PhPOP with the more negative interaction energies values compared to that of TtPOP. Further, Non‐covalent interaction (NCI) plot reveals that CO2 molecules adsorb more on the PhPOP than TtPOP, which can be explain by hydrogen bond formation in case of TtPOP repeating units turning aside CO2 molecule to interact with the Ph component. Overall, our present study reflects the comprising effects of surface area of the solid adsorbents as well as their functionality can be beneficial for developing efficient hypercrosslinked porous polymers as solid CO2 adsorbent.

Publisher

Wiley

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