Sujat Sen
Affiliations: | 2016-2018 | Chemical Engineering | Massachusetts Institute of Technology, Cambridge, MA, United States |
2018- | Chemistry | University of Wisconsin-La Crosse, La Crosse, WI, United States |
Area:
polymers, flow batteries, catalysisWebsite:
https://www.uwlax.edu/profile/ssen/Google:
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Publications
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Sen S, Brown SM, Leonard M, et al. (2019) Electroreduction of carbon dioxide to formate at high current densities using tin and tin oxide gas diffusion electrodes Journal of Applied Electrochemistry. 49: 917-928 |
Sen S, Leonard M, Radhakrishnan R, et al. (2018) Pulse Plating of Copper onto Gas Diffusion Layers for the Electroreduction of Carbon Dioxide Mrs Advances. 3: 1277-1284 |
Sen S, Skinn B, Hall T, et al. (2017) Pulsed Electrodeposition of Tin Electrocatalysts onto Gas Diffusion Layers for Carbon Dioxide Reduction to Formate Mrs Advances. 2: 451-458 |
Sen S, Skinn B, Radhakrishnan R, et al. (2017) Investigation of Pulse-Reverse Electrodeposited Copper Electrocatalysts for Carbon Dioxide Reduction to Ethylene Ecs Transactions. 77: 933-946 |
Sen S, Chow C, Moazzen E, et al. (2017) Electroactive nanofluids with high solid loading and low viscosity for rechargeable redox flow batteries Journal of Applied Electrochemistry. 47: 593-605 |
Sen S, Govindarajan V, Pelliccione CJ, et al. (2015) Surface modification approach to TiO2 nanofluids with high particle concentration, low viscosity and electrochemical activity. Acs Applied Materials & Interfaces |
DeCiccio D, Ahn ST, Sen S, et al. (2015) Electrochemical reduction of CO2 with clathrate hydrate electrolytes and copper foam electrodes Electrochemistry Communications. 52: 13-16 |
Sen S, Moazzen E, Aryal S, et al. (2015) Engineering nanofluid electrodes: controlling rheology and electrochemical activity of γ-Fe2O3 nanoparticles Journal of Nanoparticle Research. 17: 1-10 |
Sen S, Saraidaridis J, Kim SY, et al. (2013) Viologens as charge carriers in a polymer-based battery anode. Acs Applied Materials & Interfaces. 5: 7825-30 |
Liu X, Sen S, Liu J, et al. (2011) Antioxidant deactivation on graphenic nanocarbon surfaces. Small (Weinheim An Der Bergstrasse, Germany). 7: 2775-85 |