Palladium‐Percolated Networks Enabled by Low Loadings of Branched Nanorods for Enhanced H2 Separations

Author:

Hu Leiqing1,Chen Kaiwen1,Lee Won‐Il2ORCID,Kisslinger Kim3,Rumsey Clayton4,Fan Shouhong5,Bui Vinh T.1,Esmaeili Narjes1,Tran Thien1,Ding Yifu5,Trebbin Martin46,Nam Chang‐Yong23,Swihart Mark T.1,Lin Haiqing1ORCID

Affiliation:

1. Department of Chemical and Biological Engineering University at Buffalo, The State University of New York Buffalo NY 14260 USA

2. Department of Materials Science and Chemical Engineering Stony Brook University Stony Brook NY 11794 USA

3. Center for Functional Nanomaterials Brookhaven National Laboratory Upton NY 11973 USA

4. Department of Chemistry University at Buffalo, The State University of New York Buffalo NY 14260 USA

5. Department of Mechanical Engineering University of Colorado Boulder CO 80309 USA

6. Research and Education in Energy, Environment, and Water (RENEW) Institute University at Buffalo, The State University of New York Buffalo NY 14260 USA

Abstract

AbstractNanoparticles (NPs) at high loadings are often used in mixed matrix membranes (MMMs) to improve gas separation properties, but they can lead to defects and poor processability that impede membrane fabrication. Herein, it is demonstrated that branched nanorods (NRs) with controlled aspect ratios can significantly reduce the required loading to achieve superior gas separation properties while maintaining excellent processability, as demonstrated by the dispersion of palladium (Pd) NRs in polybenzimidazole for H2/CO2 separation. Increasing the aspect ratio from 1 for NPs to 40 for NRs decreases the percolation threshold volume fraction by a factor of 30, from 0.35 to 0.011. An MMM with percolated networks formed by Pd NRs at a volume fraction of 0.039 exhibits H2 permeability of 110 Barrer and H2/CO2 selectivity of 31 when challenged with simulated syngas at 200 °C, surpassing Robeson's upper bound. This work highlights the advantage of NRs over NPs and nanowires and shows that right‐sizing nanofillers in MMMs is critical to construct highly sieving pathways at minimal loadings. This work paves the way for this general feature to be applied across materials systems for a variety of chemical separations.

Funder

U.S. Department of Energy

Brookhaven National Laboratory

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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