4.8 Article

A series of metal-organic frameworks with high methane uptake and an empirical equation for predicting methane storage capacity

Journal

ENERGY & ENVIRONMENTAL SCIENCE
Volume 6, Issue 9, Pages 2735-2744

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c3ee41166d

Keywords

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Funding

  1. Welch Foundation
  2. DOE BES [DE-FG02-08ER46522]

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A series of metal-organic frameworks (NOTT-100a (MOF-505a), NOTT-101a, NOTT-102a, NOTT-103a and NOTT-109a) with variable open copper sites and micropore spaces have been examined as potential adsorbents for methane storage. They exhibit high adsorption capacities for methane at 300 K and 35 bar (181-196 cm(3) (STP) cm(-3)). Supposing that the deliverable amount of methane is defined as the difference in the amount of methane adsorbed between 5 bar and 35 bar, NOTT-101a, NOTT-102a and NOTT-103a exhibit excellent deliverable capacities of methane (136-140 cm(3) (STP) cm(-3)), comparable to the highest of all previously reported MOF materials. The gravimetric methane uptake in this MOF series systematically increases with increasing porosity, while their methane storage pore occupancy decreases with increasing pore size. The fact that gravimetric methane uptakes correlate well with their corresponding pore volumes enables us to derive an empirical equation: C = 126.69 x V-p(2) + 381.62 x V-p - 12.57, where C is the excess gravimetric methane storage capacity at 35 bar and 300 K in cm(3) (STP) g(-1), and V-p is the pore volume of a MOF material in cm(3) g(-1). This empirical equation can predict the methane storage performance of previously reported microporous MOF materials of V-p less than 1.50 cm(3) g(-1) reasonably well, and thus provides a convenient method to screen MOFs for methane storage purposes.

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