posted on 2024-06-06, 11:38authored byLi Wang, Zhangmiao Ye, Mingxi Wang, Zhaozhuang Liu, Jinping Li, Jiangfeng Yang
Nitrous oxide (N<sub>2</sub>O), as the third largest
greenhouse
gas in the world, also has great applications in industry, so the
purification of N<sub>2</sub>O from N<sub>2</sub> in industrial tail
gas is a crucial process for achieving environmental protection and
giving full play to its economic value. Based on the polarity difference
of N<sub>2</sub>O and N<sub>2</sub>, N<sub>2</sub>O adsorption was
researched on DMOF series materials with different polarities and
methyl numbers of the ligand. N<sub>2</sub>O adsorption at 0.1 bar
is enhanced, attributed to an increase of the methyl group densities
at the benzenedicarboxylate linker. Grand canonical Monte Carlo simulations
demonstrate the key role of methyl groups within the pore surface
in the preferential N<sub>2</sub>O affinity. Methyl groups preferentially
bind to N<sub>2</sub>O and thus enhanced low (partial) pressure N<sub>2</sub>O adsorption and N<sub>2</sub>O/N<sub>2</sub> separation.
The result shows that DMOF-TM has the highest N<sub>2</sub>O adsorption
capacity (19.6 cm<sup>3</sup>/g) and N<sub>2</sub>O/N<sub>2</sub> selectivity
(23.2) at 0.1 bar. Breakthrough experiments show that, with an increase
of the methyl number, the coadsorption time and retention time also
increase, and DMOF-TM has the best N<sub>2</sub>O/N<sub>2</sub> separation
performance.