2,784
Views
20
CrossRef citations to date
0
Altmetric
Focus on Carbon-neutral Energy Science and Technology

Oxygen surface exchange kinetics measurement by simultaneous optical transmission relaxation and impedance spectroscopy: Sr(Ti,Fe)O3-x thin film case study

, &
Pages 130-141 | Received 24 Aug 2017, Accepted 17 Jan 2018, Published online: 20 Feb 2018

References

  • Maier J . Nanoionics: ion transport and electrochemical storage in confined systems. Nature Mater. 2005;4:805–815.10.1038/nmat1513
  • Shim JH , Chao CC , Huang H , et al . Atomic layer deposition of yttria-stabilized zirconia for solid oxide fuel cells. Chem Mater. 2007;19(15):3850–3854.10.1021/cm070913t
  • Yoon J , Cho S , Kim J-H , et al . Vertically aligned nanocomposite thin films as a cathode/electrolyte interface layer for thin-film solid oxide fuel cells. Adv Funct Mater. 2009;19(24):3868–3873.10.1002/(ISSN)1616-3028
  • Kim I-D , Rothschild A , Lee BH , et al . Ultrasensitive chemiresistors based on electrospun TiO2 nanofibers. Nano Lett. 2006;6(9):2009–2013.10.1021/nl061197 h
  • Nomura K , Ohta H , Takagi A , et al . Room-temperature fabrication of transparent flexible thin-film transistors using amorphous oxide semiconductors. Nature 2004;432:488–492.10.1038/nature03090
  • Koo M , Park K-I , Lee SH , et al . Bendable inorganic thin-film battery for fully flexible electronic systems. Nano Lett. 2012;12:4810–4816.10.1021/nl302254v
  • Fleig J , Baumann FS , Brichzin V , et al . Thin film microelectrodes in SOFC electrode research. Fuel Cells 2006;6:284–292.10.1002/(ISSN)1615-6854
  • Mueller DN , De Souza RA , Yoo H-I , et al . Phase stability and oxygen nonstoichiometry of highly oxygen-deficient perovskite-type oxides: a case study of (Ba,Sr)(Co,Fe)O3−δ . Chem Mater. 2012;24:269–274.10.1021/cm2033004
  • Kawada T , Suzuki J , Sase M , et al . Determination of oxygen vacancy concentration in a thin film of La0.6Sr0.4CoO3−δ by an electrochemical method. J Electrochem Soc. 2002;149(7):E252–E259.10.1149/1.1479728
  • Zakutayev A , Perry NH , Mason TO , et al . Non-equilibrium origin of high electrical conductivity in gallium zinc oxide thin films. Appl Phys Lett. 2013;103(23):232106.10.1063/1.4841355
  • Han JW , Yildiz B . Enhanced one dimensional mobility of oxygen on strained LaCoO3(001) surface. J Mater Chem. 2011;21:18983–18990.10.1039/c1jm12830b
  • Kuklja MM , Kotomin EA , Merkle R , et al . Combined theoretical and experimental analysis of processes determining cathode performance in solid oxide fuel cells. Phys Chem Chem Phys. 2013;15:5443.10.1039/c3cp44363a
  • Perry NH , Harrington GF , Tuller HL . Ionic conductors: electrochemical ionic interfaces. In: Pryds N , Esposito V , editors. Metal oxide-based thin film structures: formation, characterization and application of interface-based phenomena. Amsterdam: Elsevier; 2018. 536 p.
  • Perry NH , Kim N , Tuller HL , et al . Origins and control of optical absorption in Sr(Ti,Fe)O3-x perovskite. (In Preparation)
  • Chen T , Harrington GF , Sasaki K , et al . Impact of microstructure and crystallinity on surface exchange kinetics of strontium titanium iron oxide perovskite by in situ optical transmission relaxation approach. J Mater Chem A. 2017;5:23006–23019.10.1039/C7TA04940D
  • Chen T , Harrington GF , Sasaki K , et al . Relating microstructure to surface exchange kinetics using in situ optical absorption relaxation. ECS Trans. 2017;75(43):23–31.10.1149/07543.0023ecst
  • Kim JJ , Bishop SR , Thompson NJ , et al . Investigation of redox kinetics by simultaneous in situ optical absorption relaxation and electrode impedance measurements: Pr doped ceria thin films. ECS Trans. 2013;57(1):1979–1984.10.1149/05701.1979ecst
  • Kim JJ , Bishop SR , Chen D , et al . Defect chemistry of Pr doped ceria thin films investigated by in situ optical and impedance measurements. Chem. Mater. 2017;29(5):1999–2007.10.1021/acs.chemmater.6b03307
  • Becker K-D . Spectroscopic in situ investigations of solids at high temperatures: a Mössbauer and optical spectroscopy study of diffusion and of the kinetics of solid state reactions. Solid State Ionics. 1990;39:27–35.10.1016/0167-2738(90)90024-L
  • Ben-Michael R , Tannhauser DS . Visual observation of chemical diffusion in stabilized zirconia. Appl Phys A. 1991;53(3):185–188.10.1007/BF00324248
  • Waser R , Bieger T , Maier J . Determination of acceptor concentrations and energy levels in oxides using an optoelectrochemical technique. Solid State Comm. 1990;76:1077–1081.10.1016/0038-1098(90)90087-R
  • Yu JH , Lee J-S , Maier J . Peculiar nonmonotonic water incorporation in oxides detected by local in situ optical absorption spectroscopy. Angew Chem Int Ed. 2007;46:8992–8994.10.1002/(ISSN)1521-3773
  • Shi J , Fritze H , Borchardt G , et al . Defect chemistry, redox kinetics, and chemical diffusion of lithium deficient lithium niobate. Phys Chem Chem Phys. 2011;13:6925–6930.10.1039/c0cp02703 k
  • Rothschild A , Menesklou W , Tuller HL , et al . Electronic structure, defect chemistry, and transport properties of SrTi1-xFexO3-y solid solutions. Chem Mater. 2006;18(16):3651–3659.10.1021/cm052803x
  • Nenning A , Volgger L , Miller E , et al . The electrochemical properties of Sr(Ti, Fe)O3-δ for anodes in solid oxide fuel cells. J Electrochem Soc. 2017;164(4):F364–F371.10.1149/2.1271704jes
  • Molin S , Lewandowska-Iwaniak W , Kusz B , et al . Structural and electrical properties of Sr(Ti, Fe)O3-δ materials for SOFC cathodes. J Electroceram. 2012;28(1):80–87.10.1007/s10832-012-9683-x
  • Menesklou W , Schreiner H-J , Härdtl K , et al . High temperature oxygen sensors based on doped SrTiO3 . Sens Actuator B Chem. 1999;59(2–3):184–189.10.1016/S0925-4005(99)00218-X
  • Metlenko V , Jung WC , Bishop SR , et al . Oxygen diffusion and surface exchange in the mixed conducting oxides SrTi1−yFeyO3−δ . Phys Chem Chem Phys. 2016;18:29495–29505.10.1039/C6CP05756 J
  • Schulze-Küppers F , ten Donkelaar SFP , Baumann S , et al . Structural and functional properties of SrTi1−xFexO3−δ (0 ≤ x ≤ 1) for the use as oxygen transport membrane. Sep Purif Technol. 2015;147:414–421.10.1016/j.seppur.2014.12.020
  • Yoo C-Y , Bouwmeester H . Oxygen surface exchange kinetics of SrTi1−xFexO3−δ mixed conducting oxides. Phys Chem Chem Phys. 2012;14:11759–11765.10.1039/c2cp41923 h
  • Jung W , Tuller HL . Investigation of cathode behavior of model thin-film SrTi1−xFexO3−δ (x = 0.35 and 0.5) mixed ionic-electronic conducting electrodes. J Electrochem Soc. 2008;155(11):B1194–B1201.10.1149/1.2976212
  • Jung W , Tuller HL . A new model describing solid oxide fuel cell cathode kinetics: model thin film SrTi1-xFexO3-δ mixed conducting oxides – a case study. Adv Energy Mater. 2011;1:1184–1191.10.1002/aenm.201100164
  • Jung W , Tuller HL . Investigation of surface Sr segregation in model thin film solid oxide fuel cell perovskite electrodes. Energy Environ Sci. 2012;5:5370–5378.10.1039/C1EE02762J
  • Perry NH , Pergolesi D , Bishop SR , et al . Defect chemistry and surface oxygen exchange kinetics of La-doped Sr(Ti,Fe)O3-α in oxygen-rich atmospheres. Solid State Ionics. 2015;273:18–24.10.1016/j.ssi.2014.09.013
  • Perry NH , Pergolesi D , Sasaki K , et al . Influence of donor doping on cathode performance: (La,Sr)(Ti,Fe)O3-δ case study. ECS Trans. 2013;57(1):1719–1723.10.1149/05701.1719ecst
  • Yasuda I , Hikita T . Precise determination of the chemical diffusion coefficient of calcium-doped lanthanum chromites by means of electrical conductivity relaxation. J Electrochem Soc. 1994;141(5):1268–1273.10.1149/1.2054908
  • ten Elshof JE , Lankhorst MHR , Bouwmeester HJM . Oxygen exchange and diffusion coefficients of strontium-doped lanthanum ferrites by electrical conductivity relaxation. J Electrochem Soc. 1997;144(3):1060–1067.10.1149/1.1837531
  • Hagemann H-J . Akzeptorionen in BaTiO3 und SrTiO3 und ihre Auswirkung auf die Eigenschaften von Titanatkeramiken [thesis]. Aachen: RWTH Aachen; 1980.
  • Bhide VG , Bhasin HC . Mössbauer studies of the SrTiO3: Fe57 system. Phys Rev. 1968;172(2):290–294.10.1103/PhysRev.172.290
  • Luiskutty CT , Ouseph PJ . Valence states of iron in photochromic strontium titanate by Mössbauer effect. Solid State Comm. 1973;13:405–409.10.1016/0038-1098(73)90619-4
  • Baker JN , Bowes PC , Long DM , et al . Defect mechanisms of coloration in Fe-doped SrTiO3 from first principles. Appl Phys Lett. 2017;110:122903.10.1063/1.4978861
  • Kim JJ . Defect equilibria and electrode kinetics in Prx Ce1-xO2–δ mixed conducting thin films: an in-situ optical and electrochemical investigation [PhD thesis]. Cambridge, MA: Department of Materials Science and Engineering, MIT; 2015.
  • Chen D , Tuller HL . Voltage-controlled nonstoichiometry in oxide thin films: Pr0.1Ce0.9O2−δ case study. Adv Funct Mater. 2014;24(48):7638–7644.10.1002/adfm.v24.48
  • la O’ GJ , Shao-Horn Y . Oxygen surface exchange kinetics on Sr-substituted lanthanum manganite and ferrite thin-film microelectrodes. J Electrochem Soc. 2009;156(7):B816–B824.10.1149/1.3123214
  • Maier J . Physical chemistry of ionic materials. Chichester: Wiley; 2004.10.1002/0470020229
  • Mosleh M , So̸gaard M , Hendriksen PV . Kinetics and mechanisms of oxygen surface exchange on La0.6Sr0.4FeO3−δ thin films. J Electrochem Soc. 2009;156(4):B441–B457.10.1149/1.3062941
  • Maier J . On the correlation of macroscopic and microscopic rate constants in solid state chemistry. Solid State Ionics. 1998;112:197–228.10.1016/S0167-2738(98)00152-0
  • Kuhn M , Kim JJ , Bishop SR , et al . Oxygen nonstoichiometry and defect chemistry of perovskite-structured BaxSr1–xTi1–yFeyO3–y/2+δ solid solutions. Chem Mater. 2013;25(15):2970–2975.10.1021/cm400546z
  • Perry NH , Ishihara T . Roles of bulk and surface chemistry in the oxygen exchange kinetics and related properties of mixed conducting perovskite oxide electrodes. Materials 2016;9(10):858.10.3390/ma9100858
  • Leonhardt M , De Souza RA , Claus J , et al . Surface kinetics of oxygen incorporation into SrTiO3 . J Electrochem Soc. 2002;149(2):J19–J26.10.1149/1.1430723
  • Boukamp BA . A nonlinear least squares fit procedure for analysis of immittance data of electrochemical systems. Solid State Ionics. 1986;20:31–44.
  • Badwal SPS . Electrical conductivity of single crystal and polycrystalline yttria-stabilized zirconia. J Mater Sci. 1984;19(6):1767–1776.
  • Mebane DS . A variational approach to surface cation segregation in mixed conducting perovskites. Comp Mater Sci. 2015;103:231–236.10.1016/j.commatsci.2014.11.025