TY - JOUR
T1 - Self-assembled “3D-stereoscopic printing-like” PANI-based porous carbon aerogels for high-efficiency CO2 adsorption
AU - Zhang, Zilei
AU - Li, Dagang
AU - Zhang, Dongxiang
AU - Tan, Haocun
AU - Zhang, Fengqi
AU - Hou, Jinzheng
AU - Tan, Runchao
AU - Li, Jinying
AU - Xu, Xiyan
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/9/1
Y1 - 2025/9/1
N2 - Adsorption technology is a promising strategy for efficient CO2 capture, especially when adsorbents feature three-dimensional interconnected pore structures that enable rapid gas transport. Polyaniline (PANI), a nitrogen-rich and cost-effective polymer, holds the potential for CO2 adsorption. However, strong hydrogen bonding between PANI molecular chains often leads to significant aggregation, hindering dispersion and reducing the density of accessible adsorption sites. In this study, we present an innovative cryo-polymerization approach to fabricate CO2 adsorbents 3D-(PANI@PAM) gel, where PANI is “self-assembled” onto the surface of a three-dimensional interconnected polyacrylamide (PAM) medium. This method enables the ordered “stereoscopic printing” of PANI on PAM pore surfaces, effectively preventing PANI aggregation. After activation treatment, the resulting nitrogen-rich aerogel exhibits uniform nitrogen distribution and a high nitrogen content. The resulting hierarchical pore structure (0.54–0.64 nm) significantly enhances CO2 affinity. The optimized aerogel achieves an exceptional CO2 adsorption capacity of 6.04 mmol·g−1 at 0 °C and 101 kPa, surpassing comparable materials. Furthermore, the aerogel demonstrates a CO2/N2 selectivity of 23.07. These findings underscore the unique advantages and significant potential of carbon aerogels in CO2 capture, providing a novel and effective pathway for designing high-capacity polymer-based carbon materials.
AB - Adsorption technology is a promising strategy for efficient CO2 capture, especially when adsorbents feature three-dimensional interconnected pore structures that enable rapid gas transport. Polyaniline (PANI), a nitrogen-rich and cost-effective polymer, holds the potential for CO2 adsorption. However, strong hydrogen bonding between PANI molecular chains often leads to significant aggregation, hindering dispersion and reducing the density of accessible adsorption sites. In this study, we present an innovative cryo-polymerization approach to fabricate CO2 adsorbents 3D-(PANI@PAM) gel, where PANI is “self-assembled” onto the surface of a three-dimensional interconnected polyacrylamide (PAM) medium. This method enables the ordered “stereoscopic printing” of PANI on PAM pore surfaces, effectively preventing PANI aggregation. After activation treatment, the resulting nitrogen-rich aerogel exhibits uniform nitrogen distribution and a high nitrogen content. The resulting hierarchical pore structure (0.54–0.64 nm) significantly enhances CO2 affinity. The optimized aerogel achieves an exceptional CO2 adsorption capacity of 6.04 mmol·g−1 at 0 °C and 101 kPa, surpassing comparable materials. Furthermore, the aerogel demonstrates a CO2/N2 selectivity of 23.07. These findings underscore the unique advantages and significant potential of carbon aerogels in CO2 capture, providing a novel and effective pathway for designing high-capacity polymer-based carbon materials.
KW - Carbon aerogel
KW - CO adsorption
KW - Cryo-polymerization
KW - PANI
UR - http://www.scopus.com/pages/publications/105009460083
U2 - 10.1016/j.cej.2025.165389
DO - 10.1016/j.cej.2025.165389
M3 - Article
AN - SCOPUS:105009460083
SN - 1385-8947
VL - 519
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 165389
ER -