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Featured researches published by Tyler Rash.


Nanotechnology | 2012

Nanospace engineering of KOH activated carbon

Jimmy Romanos; Matthew Beckner; Tyler Rash; L. Firlej; Bogdan Kuchta; P. Yu; Galen J. Suppes; Carlos Wexler; Peter Pfeifer

This paper demonstrates that nanospace engineering of KOH activated carbon is possible by controlling the degree of carbon consumption and metallic potassium intercalation into the carbon lattice during the activation process. High specific surface areas, porosities, sub-nanometer (<1 nm) and supra-nanometer (1-5 nm) pore volumes are quantitatively controlled by a combination of KOH concentration and activation temperature. The process typically leads to a bimodal pore size distribution, with a large, approximately constant number of sub-nanometer pores and a variable number of supra-nanometer pores. We show how to control the number of supra-nanometer pores in a manner not achieved previously by chemical activation. The chemical mechanism underlying this control is studied by following the evolution of elemental composition, specific surface area, porosity, and pore size distribution during KOH activation and preceding H(3)PO(4) activation. The oxygen, nitrogen, and hydrogen contents decrease during successive activation steps, creating a nanoporous carbon network with a porosity and surface area controllable for various applications, including gas storage. The formation of tunable sub-nanometer and supra-nanometer pores is validated by sub-critical nitrogen adsorption. Surface functional groups of KOH activated carbon are studied by microscopic infrared spectroscopy.


Adsorption Science & Technology | 2014

Engineered Porous Carbon for High Volumetric Methane Storage

Jimmy Romanos; S. Sweany; Tyler Rash; L. Firlej; Bogdan Kuchta; J.C. Idrobo; Peter Pfeifer

This paper covers the optimization of methane volumetric storage capacity by controlling the sub-nanometre (<1 nm) and supra-nanometre (1–5 nm) pore volumes. Nanospace engineering of KOH activated carbon generates an ideal structure for methane storage in which gas molecules are adsorbed as a high-density fluid by strong van der Waals forces into pores that are a few molecules in diameter. High specific surface areas, porosities, sub-nanometre (<1 nm) and supra-nanometre (1–5 nm) pore volumes are quantitatively selected by controlling the degree of carbon consumption and metallic potassium intercalation into the carbon lattice during the activation process. The formation of tuneable sub-nanometre and supra-nanometre pores is validated by sub-critical nitrogen adsorption. Aberration-corrected scanning transmission electron microscopy data show the atomic structure of high-surface-area activated carbon (2600 m2/g). While high surface area and high porosity are optimal for gravimetric methane storage, the results indicate that an exclusive sub-nanometre region, a low porosity and an acceptable surface area (approximately 2000 m2/g) are ideal for methane volumetric storage, storing 120 g CH4/l (184 vol/vol) at 35 bar and room temperature (22 °C). High-pressure methane isotherms up to 150 bar at 30, −25 and −50 °C on optimal activated carbons are presented. Methane volumetric storage capacity at 35 bar reaches 176 g/l (269 vol/vol) and 202 g/l (309 vol/vol) at −25 and −50 °C, respectively.


Fuel | 2017

Microporous carbon monolith synthesis and production for methane storage

Tyler Rash; A. Gillespie; B.P. Holbrook; L.H. Hiltzik; J. Romanos; Y.C. Soo; S. Sweany; Peter Pfeifer


Journal of energy storage | 2018

Evaluating methane adsorbed film densities on activated carbon in dynamic systems

Matthew Prosniewski; Andrew Gillespie; Ernest Knight; Tyler Rash; David Stalla; Jimmy Romanos; Adam W. Smith


Adsorption-journal of The International Adsorption Society | 2018

Controlled charge and discharge of a 40-L monolithic adsorbed natural gas tank

Matthew Prosniewski; Tyler Rash; Ernest Knight; Andrew Gillespie; David Stalla; Conrad J. Schulz; Peter Pfeifer


Fuel | 2017

メタン貯蔵のためのミクロ多孔性炭素モノリス合成と生産【Powered by NICT】

Tyler Rash; A. Gillespie; B.P. Holbrook; L.H. Hiltzik; J. Romanos; Y.C. Soo; S. Sweany; Peter Pfeifer


Energy & Fuels | 2017

Cycling and Regeneration of Adsorbed Natural Gas in Microporous Materials

Jimmy Romanos; Tyler Rash; Sara Abou Dargham; Matthew Prosniewski; Fatima Barakat; Peter Pfeifer


Bulletin of the American Physical Society | 2016

Analysis of Adsorbed Natural Gas Tank Technology

Ernest Knight; Conrad Schultz; Tyler Rash; Elmar Dohnke; David Stalla; Andrew Gillespie; Mark Sweany; Florian Seydel; Peter Pfeifer


Bulletin of the American Physical Society | 2016

Direct Measurement of the Adsorbed Film Volume for Estimating Heats of Adsorption

Andrew Gillespie; Elmar Dohnke; Tyler Rash; David Stalla; Ernest Knight; Florian Seydel; Mark Sweany; Peter Pfeifer


Bulletin of the American Physical Society | 2014

High Density Methane Storage in Nanoporous Carbon

Tyler Rash; Elmar Dohnke; Yuchoong Soo; Brett Maland; Plamen Doynov; Yuyi Lin; Peter Pfeifer

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S. Sweany

University of Missouri

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