Related Experiment Video
Updated: Aug 6, 2026

Tri-layered Electrospinning to Mimic Native Arterial Architecture using Polycaprolactone, Elastin, and Collagen: A Preliminary Study
Published on: January 4, 2011
Porous Organic Polymers for CO2 Capture and Electroreduction: Recent Advances and Future Perspectives
Rabia Iftikhar1, Li Wang1, Qian Zhang1
1Department of Environmental Science and Engineering, Xi'an Key Laboratory of Solid Waste Recycling and Resource Recovery, Xi'an Jiaotong University, Xi'an, PR China.
None:
Increasing atmospheric CO2 levels necessitate the development of efficient capture and conversion technologies. Porous organic polymers (POPs) have emerged as promising candidates owing to their high surface area, structural tunability, and chemical stability. This review summarizes recent molecular engineering strategies for enhancing CO2 adsorption and electrochemical reduction (CO2RR), including heteroatom doping, post-synthetic functional group grafting, and integration with carbon-based materials. These approaches significantly enhance catalytic selectivity, stability, and conversion efficiency to value-added products, such as CO, formate, methanol, and ethanol, under mild conditions. Despite these advances, key challenges remain, including low intrinsic electrical conductivity, difficulties in scalable synthesis, and limited control over pore architecture. Future research should focus on developing dual-functional POPs capable of simultaneous CO2 capture and conversion, improving electrical conductivity, and establishing scalable and cost-effective fabrication strategies. The integration of computational design, in situ/operando characterization, and device-level optimization will be crucial for bridging the gap between laboratory-scale performance and practical industrial applications.

