High-Performance Porous Organic Polymers for Environmental Remediation of Toxic Gases.
Mohammad G RabbaniRiley K SasseSwayamprabha BeheraPurusottam JenaJian LiuPraveen K ThallapallyTimur IslamogluMohammad K ShehabMahmoud M KaidOmar K FarhaHani M El-KaderiPublished in: Langmuir : the ACS journal of surfaces and colloids (2024)
Sulfur dioxide (SO 2 ) is a harmful acidic gas generated from power plants and fossil fuel combustion and represents a significant health risk and threat to the environment. Benzimidazole-linked polymers (BILPs) have emerged as a promising class of porous solid adsorbents for toxic gases because of their chemical and thermal stability as well as the chemical nature of the imidazole moiety. The performance of BILPs in SO 2 capture was examined by synergistic experimental and theoretical studies. BILPs exhibit a significantly high SO 2 uptake of up to 8.5 mmol g -1 at 298 K and 1.0 bar. The density functional theory (DFT) calculations predict that this high SO 2 uptake is due to the dipole-dipole interactions between SO 2 and the functionalized polymer frames through O 2 S(δ + )···N(δ - )-imine and O═S═O(δ - )···H(δ + )-aryl and intermolecular attraction between SO 2 molecules (O═S═O(δ - )···S(δ + )O 2 ). Moderate isosteric heats of adsorption ( Q st ≈ 38 kJ mol -1 ) obtained from experimental SO 2 uptake studies are well supported by the DFT calculations (≈40 kJ mol -1 ), which suggests physisorption processes enabling rapid adsorbent regeneration for reuse. Repeated adsorption experiments with almost identical SO 2 uptake confirm the easy regeneration and robustness of BILPs. Moreover, BILPs possess very high SO 2 adsorption selectivity at low concentration over carbon dioxide (CO 2 ), methane (CH 4 ), and nitrogen (N 2 ): SO 2 /CO 2 , 19-24; SO 2 /CH 4 , 118-113; SO 2 /N 2 , 600-674. This study highlights the potential of BILPs in the desulfurization of flue gas or other gas mixtures through capturing trace levels of SO 2 .
Keyphrases
- density functional theory
- carbon dioxide
- molecular dynamics
- room temperature
- health risk
- aqueous solution
- stem cells
- ionic liquid
- molecular docking
- case control
- molecular dynamics simulations
- wound healing
- high intensity
- drinking water
- climate change
- metal organic framework
- particulate matter
- highly efficient
- wastewater treatment
- anaerobic digestion
- mass spectrometry
- molecularly imprinted
- energy transfer