DOI: 10.1021/acsapm.6c02933 ISSN: 2637-6105

Role of Aromatic Topology in Hyper-Crosslinked Polymers on CO2 Adsorption and CO2/N2 Selectivity

Rahulbhai Parmar, Sagnik Mukherjee, Harshal Kulkarni, Prayag Gajera, Rajaram K. Nagarale, Govind Sethia

Abstract

Despite extensive studies of hyper-crosslinked polymers (HCPs) for carbon dioxide adsorption and separation, the fundamental role of aromatic precursor topology in governing localized gas confinement and molecular recognition has remained poorly understood. Herein, we demonstrate that the geometric topology of aromatic precursors, spanning isolated aromatic rings, rigid fused polycyclic frameworks, and rotationally flexible biaryl linkages, directly controls framework packing and micropore generation. Systematic variation of precursor topology reveals distinct relationships between porosity, adsorption affinity, and molecular selectivity. Comprehensive structural, thermodynamic, and adsorption analyses, including Henry’s law constants (KH), isotherm model fitting, and isosteric heats of adsorption (Qst), reveal that topology-controlled confinement may promote cooperative multi-body interactions. Benzene-derived HCP, with the most accessible ultra micropores, delivers the highest CO2 uptake (74.0 cm3 g–1 at 273 K and 1 bar) and KH (109 mmol g–1 bar–1). Anthracene-derived HCP, with its rigid fused-ring geometry, instead achieves the highest CO2/N2 selectivity (557 at 273 K and 0.01 bar) and Qst (32.0 kJ mol–1), suggesting a possible contribution from cooperative multi-body interactions between CO2 and the confined aromatic framework. This enhanced energetic interaction is accompanied by suppressed N2 adsorption, rather than by increased CO2 capacity. Overall, these results demonstrate that CO2 uptake and CO2/N2 molecular discrimination arise from distinct aspects of framework architecture, highlighting aromatic precursor topology as a key structural parameter for tuning gas adsorption and separation in HCPs.