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Updated: Jul 28, 2026

Layer-by-layer Synthesis and Transfer of Freestanding Conjugated Microporous Polymer Nanomembranes
Published on: December 15, 2015
Directing Ultramicropore Architecture in Carbon Molecular Sieve Membranes with Lanthanum for High-Fidelity Gas
Hyeokjun Seo1, Yong Sung Kwon2, Min-Jun Jang1
1Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology, 291, Daehak-ro, Yuseong-gu, Daejeon, Republic of Korea.
Abstract:
A crucial performance ceiling has long limited carbon molecular sieve (CMS) membranes in demanding gas separations, a limitation stemming directly from the inability to precisely dictate their ultramicroporous architecture. Herein, we demonstrate a novel lanthanum (La)-doping strategy to precisely control the structural evolution of polyimide-based carbon CMS membranes. Lanthanum incorporation fundamentally alters pyrolysis dynamics by significantly increasing aromatic strand mobility and enabling La complexes to serve as nanoscale Langmuir templates. This entropic-driven templating effect guides the alignment of carbon strands and optimizes their narrow arrangement, resulting in a markedly narrow pore size distribution for precise gas separation. La-doped CMS membranes exhibit exceptional molecular sieving capabilities, notably, achieving 100-fold increase in H2/CH4 selectivity while maintaining high H2 permeability. Even under realistic operating conditions involving variations in pressure, feed composition, and temperature, the La-doped CMS membranes retained their high H2 permeability and selectivity, showing minimal sensitivity to feed composition and pressure and excellent resistance to physical aging. This straightforward, versatile, and scalable metal-doping approach presents a significant advancement for developing high-performance CMS membranes, opening new opportunities for challenging industrial gas separations that require precise differentiation of molecules with similar kinetic diameters.

