Tunable 2D Conjugated Porous Organic Polymer Films for Precise Molecular Nanofiltration and Optoelectronics

Author:

Miller Kristen1,Gayle Jessica M.1,Roy Soumyabrata1ORCID,Abdellah Mohamed H.2,Hardian Rifan2,Cseri Levente34,Demingos Pedro G.5,Nadella Hema Rajesh5,Lee Frank6,Tripathi Manoj6,Gupta Sashikant7,Guo Galio1,Bhattacharyya Sohini1,Wang Xu8,Dalton Alan B.6,Garg Ashish9,Singh Chandra Veer5,Vajtai Robert1,Szekely Gyorgy210ORCID,Ajayan Pulickel1ORCID

Affiliation:

1. Department of Materials Science and NanoEngineering Rice University Houston Texas 77005 USA

2. Advanced Membranes and Porous Materials Center Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Saudi Arabia

3. Department of Chemical Engineering & Analytical Science School of Engineering The University of Manchester The Mill Sackville Street Manchester M1 3BB UK

4. Department of Chemistry Femtonics Ltd. Tuzolto u. 58 Budapest 1094 Hungary

5. Department of Material Science and Engineering University of Toronto Ontario ON M5S 1A1 Canada

6. Department of Physics and Astronomy University of Sussex Brighton BN1 9RH UK

7. Department of Materials Science and Engineering Indian Institute of Technology Kanpur Kanpur Uttar Pradesh 208016 India

8. Shared Equipment Authority Rice University Houston Texas 77005 USA

9. Department of Sustainable Energy Engineering Indian Institute of Technology Kanpur Kanpur Uttar Pradesh 208016 India

10. Chemical Engineering Program Physical Science and Engineering Division (PSE) King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Saudi Arabia

Abstract

AbstractStructural design of 2D conjugated porous organic polymer films (2D CPOPs), by tuning linkage chemistries and pore sizes, provides great adaptability for various applications, including membrane separation. Here, four free‐standing 2D CPOP films of imine‐ or hydrazone‐linked polymers (ILP/HLP) in combination with benzene (B‐ILP/HLP) and triphenylbenzene (TPB‐ILP/HLP) aromatic cores are synthesized. The anisotropic disordered films, composed of polymeric layered structures, can be exfoliated into ultrathin 2D‐nanosheets with layer‐dependent electrical properties. The bulk CPOP films exhibit structure‐dependent optical properties, triboelectric nanogenerator output, and robust mechanical properties, rivaling previously reported 2D polymers and porous materials. The exfoliation energies of the 2D CPOPs and their mechanical behavior at the molecular level are investigated using density function theory (DFT) and molecular dynamics (MD) simulations, respectively. Exploiting the structural tunability, the comparative organic solvent nanofiltration (OSN) performance of six membranes having different pore sizes and linkages to yield valuable trends in molecular weight selectivity is investigated. Interestingly, the OSN performances follow the predicted transport modeling values based on theoretical pore size calculations, signifying the existence of permanent porosity in these materials. The membranes exhibit excellent stability in organic solvents at high pressures devoid of any structural deformations, revealing their potential in practical OSN applications.

Publisher

Wiley

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