排序方式: 共有24条查询结果,搜索用时 15 毫秒
21.
Thomas Ryll Henning Galinski Lukas Schlagenhauf Pierre Elser Jennifer L. M. Rupp Anja Bieberle‐Hutter Ludwig J. Gauckler 《Advanced functional materials》2011,21(3):565-572
Agglomerated Pt thin films have been proposed as electrodes for electrochemical devices like micro‐solid oxide fuel cells (μ‐SOFCs) operating at low temperatures. However, comprehensive studies elucidating the interplay between agglomeration state and electrochemical properties are lacking. In this contribution the electrochemical performance of agglomerated and “dense” Pt thin film electrodes on yttria‐stabilized‐zirconia (YSZ) is correlated with their microstructural characteristics. Besides the microscopically measurable triple‐phase‐boundary (tpb) where Pt, YSZ and air are in contact, a considerable contribution of “nanoscopic” tpbs to the electrode conductivity resulting from oxygen permeable grain boundaries is identified. It is demonstrated that “dense” Pt thin films are excellent electrodes provided their grain size and thickness are in the nanometer range. The results disprove the prevailing idea that the performance of Pt thin film electrodes results from microscopic and geometrically measurable tpbs only. 相似文献
22.
Pawel Plonczak Anja Bieberle‐Hütter Martin Søgaard Thomas Ryll Julia Martynczuk Peter Vang Hendriksen Ludwig J. Gauckler 《Advanced functional materials》2011,21(14):2764-2775
Pulsed Laser Deposition (PLD) was used to prepare thin films with the nominal composition La0.58Sr0.4Co0.2Fe0.8O3‐δ (LSCF). The thin film microstructure was investigated as a function of PLD deposition parameters such as: substrate temperature, ambient gas pressure, target‐to‐substrate distance, laser fluence and frequency. It was found that the ambient gas pressure and the substrate temperature are the key PLD process parameters determining the thin film micro‐ and nanostructure. A map of the LSCF film nanostructures is presented as a function of substrate temperature (25–700 °C) and oxygen background pressure (0.013–0.4 mbar), with film structures ranging from fully dense to highly porous. Fully crystalline, dense, and crack‐free LSCF films with a thickness of 300 nm were obtained at an oxygen pressure lower than 0.13 mbar at a temperature of 600 °C. The obtained knowledge on the structure allows for tailoring of perovskite thin film nanostructure, e.g., for solid oxide fuel cell cathodes. A simple geometrical model is proposed, allowing estimation of the catalytic active surface area of the prepared thin films. It is shown that voids at columnar grain boundaries can result in an increase of the surface area by approximately 25 times, when compared to dense flat films. 相似文献
23.
Thomas Ryll Henning Galinski Lukas Schlagenhauf Pierre Elser Jennifer L. M. Rupp Anja Bieberle‐Hutter Ludwig J. Gauckler 《Advanced functional materials》2011,21(3):401-401
Agglomerated Pt thin films have been proposed as electrodes for electrochemical devices like micro‐solid oxide fuel cells (μ‐SOFCs) operating at low temperatures. However, comprehensive studies elucidating the interplay between agglomeration state and electrochemical properties are lacking. In this contribution the electrochemical performance of agglomerated and “dense” Pt thin film electrodes on yttria‐stabilized‐zirconia (YSZ) is correlated with their microstructural characteristics. Besides the microscopically measurable triple‐phase‐boundary (tpb) where Pt, YSZ and air are in contact, a considerable contribution of “nanoscopic” tpbs to the electrode conductivity resulting from oxygen permeable grain boundaries is identified. It is demonstrated that “dense” Pt thin films are excellent electrodes provided their grain size and thickness are in the nanometer range. The results disprove the prevailing idea that the performance of Pt thin film electrodes results from microscopic and geometrically measurable tpbs only. 相似文献
24.
Magneto-optical (MO) properties of ferromagnetic Co2YGe full-Heusler alloys (Y = Fe and Mn) are investigated by the first principles electronic structure calculations using the highly accurate FLAPW method within GGA + U approach. The polar magneto-optical Kerr angles are calculated by solving Kubo's linear response formula using the FLAPW eigenstates and eigenfunctions to obtain the optical conductivity by interband transitions. The typical features of polar Kerr rotation of transition metals with two major peaks were obtained while the low energy spectra are enhanced largely at 1-2 eV region compared to GGA results. Detailed electronic structures analysis revealed that this enhancement is due to the decreased interband transitions by reduced diagonal optical conductivity. Results indicate that the MO spectra can be used to determine the appropriate correlation level for the present alloys. 相似文献