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Dive into the research topics where Scott R. Higgins is active.

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Featured researches published by Scott R. Higgins.


Enzyme and Microbial Technology | 2011

Fabrication of macroporous chitosan scaffolds doped with carbon nanotubes and their characterization in microbial fuel cell operation

Scott R. Higgins; Daniel Foerster; Andrea Cheung; Carolin Lau; Orianna Bretschger; Shelley D. Minteer; Kenneth H. Nealson; Plamen Atanassov; Michael J. Cooney

Chitosan (CHIT) scaffolds doped with multi-walled carbon nanotubes (CNT) were fabricated and evaluated for their utility as a microbial fuel cell (MFC) anodic material. High resolution microscopy verified the ability of Shewanella oneidensis MR-1 to directly colonize CHIT-CNT scaffolds. Cross-linking agents 1-ethyl-3-[3-dimethylaminopropyl] carbodimide hydrochloride (EDC), glutaraldehyde and glyoxal were independently studied for their ability to strengthen the CHIT-CNT matrix without disrupting the final pore structure. 2.5 vol% glyoxal was found to be the optimal cross-linker in terms of porosity (BET surface area=30.2 m(2) g(-1)) and structural stability. Glyoxyl and EDC cross-linked CHIT-CNT scaffolds were then studied for their ability to transfer electrons to underlying glassy carbon. Results showed an open circuit cell voltage of 600 mV and a maximum power density of 4.75 W/m(3) at a current density of 16 A/m(3) was achieved in non stirred batch mode, which compares well with published data using carbon felt electrodes where a power density of 3.5 W/m(3) at a current density of 7 A/m(3) have been reported. Additionally, CHIT-CNT scaffolds were impregnated into carbon felt electrodes and these results suggest that CHIT-CNT scaffolds can be successfully integrated with multiple support materials to create hybrid electrode materials. Further, preliminary tests indicate that the integrated scaffolds offer a robust macroporous electrode material that can be used in flow-through configurations.


Enzyme and Microbial Technology | 2013

Towards a hybrid anaerobic digester-microbial fuel cell integrated energy recovery system: An overview of the development of an electrogenic biofilm

Scott R. Higgins; Ryan J. Lopez; Eulyn Pagaling; Tao Yan; Michael J. Cooney

An electrogenic biofilm was developed on a macroporous chitosan-carbon nanotube (CHIT-CNT) electrode under constant poised potential (-0.25V versus Ag/AgCl reference electrode) and flow through conditions utilizing the effluent of an anaerobic digester as both the inoculant and substrate for the electrogenic biofilm. After 125 days of inoculation the bioelectrode demonstrated an open circuit potential of -0.62V and a current density of 9.43μAcm(-3) (at -0.25V). Scanning electron microscopy images indicate thorough surface coverage of the biofilm with a high density of bacterial nanowires physically connecting bacteria to bacteria and bacteria to carbon nanotube (electrode surface) suggesting the nanowires are electrically conductive. DGGE was used to identify the major bacterial and archaeal populations.


International Journal of Hydrogen Energy | 2013

A nanocomposite photoelectrode made of 2.2 eV band gap copper tungstate (CuWO4) and multi-wall carbon nanotubes for solar-assisted water splitting

Nicolas Gaillard; Yuancheng C. Chang; Alexander D DeAngelis; Scott R. Higgins; Artur Braun


ACS Catalysis | 2011

Hybrid Biofuel Cell: Microbial Fuel Cell with an Enzymatic Air-Breathing Cathode

Scott R. Higgins; Carolin Lau; Plamen Atanassov; Shelley D. Minteer; Michael J. Cooney


Chemical Engineering Journal | 2015

SO2 sorption by activated carbon supported ionic liquids under simulated atmospheric conditions

Godwin Severa; Keith Bethune; Richard Rocheleau; Scott R. Higgins


Renewable Energy | 2014

High rate anaerobic digestion of wastewater separated from grease trap waste

Ryan J. Lopez; Scott R. Higgins; Eulyn Pagaling; Tao Yan; Michael J. Cooney


Electroanalysis | 2011

Standardized Characterization of a Flow Through Microbial Fuel Cell

Scott R. Higgins; Carolin Lau; Plamen Atanassov; Shelley D. Minteer; Michael J. Cooney


225th ECS Meeting (May 11-15, 2014) | 2014

PEMFC Contamination - Fundamentals and Outlook

Jean St-Pierre; Michael Angelo; Keith Bethune; Junjie Ge; Scott R. Higgins; Tatyana V. Reshetenko; Maheboob B.V. Virji; Yunfeng Zhai


240th ACS National Meeting and Exposition | 2010

Characterization of flow-through microbial fuel cells

Scott R. Higgins; Shelley D. Minteer; Michael J Cooney


Journal of environmental chemical engineering | 2018

Comparative studies of low concentration SO 2 and NO 2 sorption by activated carbon supported [C 2 mim][Ac] and KOH sorbents

Godwin Severa; John D. Head; Keith Bethune; Scott R. Higgins; Aaron Fujise

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Michael J. Cooney

University of Hawaii at Manoa

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Carolin Lau

University of New Mexico

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Eulyn Pagaling

University of Hawaii at Manoa

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Tao Yan

University of Hawaii at Manoa

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Andrea Cheung

University of Southern California

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