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Title: Engineered Transport in Microporous Materials and Membranes for Clean Energy Technologies

Journal Article · · Advanced Materials
 [1];  [2];  [3];  [1];  [4];  [5]; ORCiD logo [6]
  1. Univ. of California, Berkeley, CA (United States). Dept. of Chemical and Biomolecular Engineering
  2. Univ. of California, Berkeley, CA (United States). Dept. of Chemistry
  3. Massachusetts Inst. of Technology (MIT), Cambridge, MA (United States). Dept. of Chemical Engineering
  4. Lawrence Berkeley National Lab. (LBNL), Berkeley, CA (United States). Materials Sciences Division
  5. Univ. of California, Berkeley, CA (United States). Dept. of Chemical and Biomolecular Engineering and Dept. of Chemistry; Lawrence Berkeley National Lab. (LBNL), Berkeley, CA (United States). Materials Sciences Division
  6. Lawrence Berkeley National Lab. (LBNL), Berkeley, CA (United States). Materials Sciences Division and Molecular Foundry

Many forward-looking clean-energy technologies hinge on the development of scalable and efficient membrane-based separations. Ongoing investment in the basic research of microporous materials is beginning to pay dividends in membrane technology maturation. Specifically, improvements in membrane selectivity, permeability, and durability are being leveraged for more efficient carbon capture, desalination, and energy storage, and the market adoption of membranes in those areas appears to be on the horizon. Herein, an overview of the microporous materials chemistry driving advanced membrane development, the clean-energy separations employing them, and the theoretical underpinnings tying membrane performance to membrane structure across multiple length scales is provided. The interplay of pore architecture and chemistry for a given set of analytes emerges as a critical design consideration dictating mass transport outcomes. Also discussed are opportunities and outstanding challenges in the field, including high-flux 2D molecular-sieving membranes, phase-change adsorbents as performance-enhancing components in composite membranes, and the need for quantitative metrologies for understanding mass transport in heterophasic materials and in micropores with unusual chemical interactions with analytes of interest.

Research Organization:
Energy Frontier Research Centers (EFRC) (United States). Center for Gas Separations Relevant to Clean Energy Technologies (CGS); Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES) (SC-22)
Grant/Contract Number:
AC02-05CH11231; SC0001015
OSTI ID:
1454496
Journal Information:
Advanced Materials, Journal Name: Advanced Materials Journal Issue: 8 Vol. 30; ISSN 0935-9648
Publisher:
WileyCopyright Statement
Country of Publication:
United States
Language:
English

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  • Nagarjuna, Gavvalapalli; Hui, Jingshu; Cheng, Kevin J.
  • Journal of the American Chemical Society, Vol. 136, Issue 46, p. 16309-16316 https://doi.org/10.1021/ja508482e
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A nanoporous two-dimensional polymer by single-crystal-to-single-crystal photopolymerization journal July 2014
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Water desalination using nanoporous single-layer graphene journal March 2015
Ultimate Osmosis Engineered by the Pore Geometry and Functionalization of Carbon Nanostructures journal June 2015
Supramolecular architectures generated by self-assembly of guanosine derivatives journal January 2007
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Advances in high permeability polymeric membrane materials for CO2 separations journal January 2012
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Materials challenges for the development of solid sorbents for post-combustion carbon capture journal January 2012
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Fabrication of MMMs with improved gas separation properties using externally-functionalized MOF particles journal January 2015
Solid lithium electrolytes based on an organic molecular porous solid journal January 2015
Probing the mechanism of CO 2 capture in diamine-appended metal–organic frameworks using measured and simulated X-ray spectroscopy journal January 2015
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Advances in theory and their application within the field of zeolite chemistry journal January 2015
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Hierarchical pore-in-pore and wire-in-wire catalysts for rechargeable Zn– and Li–air batteries with ultra-long cycle life and high cell efficiency journal January 2015
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Conformational changes during permeation of Na + through a modified cyclic peptide nanotube promote energy landscape roughness journal January 2016
Advances in high permeability polymer-based membrane materials for CO 2 separations journal January 2016
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Porosity-engineered carbons for supercapacitive energy storage using conjugated microporous polymer precursors journal January 2016
Understanding and controlling the chemical evolution and polysulfide-blocking ability of lithium–sulfur battery membranes cast from polymers of intrinsic microporosity journal January 2016
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Metal–organic framework materials as catalysts journal January 2009
α,γ-Cyclic peptide ensembles with a hydroxylated cavity journal January 2009
Porous graphenes: two-dimensional polymer synthesis with atomic precision journal January 2009
Single layers of a multifunctional laminar Cu(i,ii) coordination polymer journal January 2010
Highly permeable polymers for gas separation membranes journal January 2010
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Metal–organic frameworks in mixed-matrix membranes for gas separation journal January 2012
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Synthesis and characterization of Thermally Rearranged (TR) polymers: influence of ortho-positioned functional groups of polyimide precursors on TR process and gas transport properties journal January 2013
Nature of proton transport in a water-filled carbon nanotube and in liquid water journal January 2013
CO2/N2 separations with mixed-matrix membranes containing Mg2(dobdc) nanocrystals journal January 2013
Metal–organic frameworks as solid magnesium electrolytes journal January 2014
Challenges and opportunities for mixed-matrix membranes for gas separation journal January 2013
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  • Koresh, Jacob; Soffer, Abraham
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