Engineering multifunctional MDPCs@MOFs via selective thermal etching integrates low-resistance transport with strong
Runlin Han1, Faxiang Feng1, Zanming Zhu1
1School of Chemistry and Chemical Engineering, Jinggangshan University, Ji'an 343009, China.
Abstract:
Metal-organic frameworks (MOFs) based Mixed-matrix membranes (MMMs) still present challenges in overcoming the traditional trade-off between permeability and selectivity in gas separation. Functionality of MOFs demonstrates great potentials in overcoming this issue. In this study, hierarchically structured multifunctional C@Fe2O3@ZIF-8 was proposed to construct strong adsorbed and low-resistance transport pathways enabling high CO2 sieving through a "selective thermal etching" strategy. Leveraging the thermal stability difference between MIL-88 A(Fe) and ZIF-8, the core undergoes selective pyrolysis while preserving the crystalline ZIF-8 shell. The ZIF-8 shell enhances CO2/N2 separation while optimizing interfacial compatibility, whereas the porous carbon core provides mesoporous structures for enhanced gas transport and ultramicroporous regions for improved CO2 adsorption. Meanwhile, paramagnetic Fe2O3 in the core layer enables optimized distribution of C@Fe2O3@ZIF-8 within the Pebax matrix. The C@Fe2O3@ZIF-8/Pebax MMM exhibits 216.46 % and 65.12 % improvements in CO2 permeability and CO2/N2 selectivity, respectively, over the Pebax matrix, exceeding the 2019 McKeown upper bound. This study pioneers a novel approach for constructing advanced multicomponent materials with customizable hierarchical structures by synergistically integrating high-throughput carbon channeling with MOFs molecular sieving technology.


