Biblio

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Journal Article
Ermanoski I., Siegel N..  2014.  Annual Average Efficiency of a Solar-thermochemical Reactor. Energy Procedia. 49:1932-1939.
Lichty P, Liang X, Muhich C, Evanko B, Bingham C, Weimer AW.  2012.  Atomic layer deposited thin film metal oxides for fuel production in a solar cavity reactor. International Journal of Hydrogen Energy. 37(22):16888-16894.
Ermanoski I.  2014.  Cascading pressure thermal reduction for efficient solar fuel production. International Journal of Hydrogen Energy. 39(25):13114-13117.
Ellis DS, Piekner Y, Grave DA, Schnell P, Rothschild A.  2022.  Considerations for the Accurate Measurement of Incident Photon to Current Efficiency in Photoelectrochemical Cells. Frontiers in Energy Research. 9
Antunes RA, Oliveira MCristina L, Ett G, Ett V.  2010.  Corrosion of metal bipolar plates for PEM fuel cells: A review. International Journal of Hydrogen Energy. 35(8):3632-3647.
Antunes RA, Oliveira MCristina L, Ett G, Ett V.  2010.  Corrosion of metal bipolar plates for PEM fuel cells: A review. International Journal of Hydrogen Energy. 35(8):3632-3647.
Eljarrat A, Sastre X, Peiró F, Estradé S.  0.  Density Functional Theory Modeling of Low-Loss Electron Energy-Loss Spectroscopy in Wurtzite III-Nitride Ternary Alloys. Microscopy and Microanalysis. 22(03):706-716.
Eljarrat A, Sastre X, Peiró F, Estradé S.  0.  Density Functional Theory Modeling of Low-Loss Electron Energy-Loss Spectroscopy in Wurtzite III-Nitride Ternary Alloys. Microscopy and Microanalysis. 22(03):706-716.
He Y, Vanka S, Gao T, He D, Espano J, Zhao Y, Dong Q, Lang C, Wang Y, Hamann TW et al..  2019.  Dependence of interface energetics and kinetics on catalyst loading in a photoelectrochemical system. Nano Research.
Singh A, Lapp J, Grobbel J, Brendelberger S, Reinhold JP, Olivera L, Ermanoski I, Siegel NP, McDaniel A, Roeb M et al..  0.  Design of a pilot scale directly irradiated, high temperature, and low pressure moving particle cavity chamber for metal oxide reduction. Solar Energy. 157:365-376.
Ezbiri M, Allen KM, Gàlvez ME, Michalsky R, Steinfeld A.  0.  Design principles of perovskites for thermochemical oxygen separation. ChemSusChem. 8(11):1966-1971.
Shen Q., Elfimov I.S, Fanwick P., Tokura Y., Kimura T., Finkelstein K., Colella R., Sawatzky G.A.  0.  Determination of the Mechanism for Resonant Scattering in LaMnO 3. Physical Review Letters. 96(24)
Ermanoski I., Miller J.E, Allendorf M.D.  2014.  Efficiency maximization in solar-thermochemical fuel production: Challenging the concept of isothermal water splitting. Physical Chemistry Chemical Physics. 16(18):8418.
Muhich C.L, Evanko B.W, Weston K.C, Lichty P., Liang X., Martinek J., Musgrave C.B, Weimer A.W.  0.  Efficient generation of H2 by splitting water with an isothermal redox cycle. Science. 341(6145):540-542.
Elvington MC, Colon-Mercado H, McCatty S, Stone SG, Hobbs DT.  0.  Evaluation of proton-conducting membranes for use in a sulfur dioxide depolarized electrolyzer. Journal of Power Sources. 195(9):2823-2829.
Siegel NP, Miller JE, Ermanoski I, Diver RB, Stechel EB.  0.  Factors affecting the efficiency of solar driven metal oxide thermochemical cycles. Industrial & Engineering Chemistry Research. 52(9):3276-3286.
S. Naghavi S, Emery AA, Hansen HA, Zhou F, Ozolins V, Wolverton C.  0.  Giant onsite electronic entropy enhances the performance of ceria for water splitting. Nature Communications. 8(1)
Emery AA, Saal JE, Kirklin S, Hegde VI, Wolverton C.  0.  High-throughput computational screening of perovskites for thermochemical water splitting applications. Chemistry of Materials. 28(16):5621-5634.
Ermanoski I..  0.  Maximizing efficiency in two-step solar-thermochemical fuel production. Energy Procedia. 69:1731-1740.
Miller JE, Allendorf MD, Diver RB, Evans LR, Siegel NP, Stuecker JN.  0.  Metal Oxide Composites and Structures for Ultra-High Temperature Solar Thermochemical Cycles. Journal of Materials Science. 43(14):4714-4728.
Esposito DV, Baxter JB, John J, Lewis NS, Moffat TP, Ogitsu T, O'Neil GD, Pham TAnh, A. Talin A, Velazquez JM et al..  0.  Methods of photoelectrode characterization with high spatial and temporal resolution. Energy & Environmental Science. 8(10):2863-2885.