Structural and defect chemistry guidelines for Sr(V,Nb)O3-based SOFC anode materials
文献信息
J. Macías, A. A. Yaremchenko, D. P. Fagg, J. R. Frade
Structural and defect chemistry guidelines were used for Nb-substituted SrVO3−δ materials, designed to meet SOFC anode requirements, with emphasis on redox tolerance, thermochemical compatibility with other SOFC materials, electrical conductivity and adjustable changes in oxygen stoichiometry for their prospective impact on electrocatalytic performance. SrV1−xNbxO3−δ (x = 0–0.30) ceramics were prepared by solid-state synthesis and sintered at 1773 K in a reducing atmosphere. XRD and SEM/EDS showed that under these conditions a single-phase cubic perovskite structure appears up to x ≈ 0.25. Electrical conductivity is metallic-like and nearly p(O2)-independent. Although substitution by niobium decreases the conductivity, which still exceeds 100 S cm−1 for x ≤ 0.20 at temperatures below 1273 K, it also expands the stability domain of the cubic perovskite phase and suppresses partly high thermochemical expansion characteristic of parent SrVO3−δ. The upper p(O2) limit of phase stability was found to shift from ∼2 × 10−15 atm for the undoped material to ∼2 × 10−12 atm for x = 0.30, whereas the average thermal expansion coefficient at 773–1223 K decreased from 22.7 × 10−6 to 13.3 × 10−6 K−1. SrV1−xNbxO3−δ perovskites undergo oxidative decomposition in air, which causes dimensional and microstructural changes. However, sluggish kinetics of oxidation under inert gas conditions results in nearly reversible behavior in relatively short-term redox cycles between reducing and inert atmospheres. Subtle structural changes and a close correlation with point defect chemistry clarify these sluggish changes and provide guidelines to retain the metastability.
期刊推荐

Russian Journal of General Chemistry

Russian Journal of Applied Chemistry

Russian Journal of Bioorganic Chemistry

Drug Discovery Today

Current Opinion in Solid State & Materials Science

Journal of Saudi Chemical Society

New Journal of Chemistry

Crystallography Reports

Russian Journal of Coordination Chemistry

Organic Process Research & Development
相关文献
The photochemistry of sodium ion pump rhodopsin observed by watermarked femto- to submillisecond stimulated Raman spectroscopy
Yusaku Hontani, Miroslav Kloz, Yoshitaka Kato, John T. M. Kennis
DOI: 10.1039/C6CP05240A
Binary and ternary recombination of H2D+ and HD2+ ions with electrons at 80 K
Petr Dohnal, Ábel Kálosi, Radek Plašil, Štěpán Roučka, Artem Kovalenko, Serhiy Rednyk, Rainer Johnsen, Juraj Glosík
DOI: 10.1039/C6CP04152C
Excitonic and vibrational coherence in artificial photosynthetic systems studied by negative-time ultrafast laser spectroscopy
Dongjia Han, Bing Xue, Juan Du, Tomohiro Miyatake, Hitoshi Tamiaki, Xin Xing, Wei Yuan, Yanyan Li
DOI: 10.1039/C6CP03540J
Prediction of two-photon absorption enhancement in red fluorescent protein chromophores made from non-canonical amino acids
M. Alaraby Salem, Isaac Twelves, Alex Brown
DOI: 10.1039/C6CP03865D
The influence of LiH on the rehydrogenation behavior of halide free rare earth (RE) borohydrides (RE = Pr, Er)
Michael Heere, Seyed Hosein Payandeh GharibDoust, Christoph Frommen, Magnus H. Sørby, Torben R. Jensen, Bjørn C. Hauback
DOI: 10.1039/C6CP04523E
Hydrogen bonds in methane–water clusters
Juan-Ramón Salazar-Cano, Alfredo Guevara-García, Rubicelia Vargas, Albeiro Restrepo, Jorge Garza
DOI: 10.1039/C6CP04086A
Tuning the thermal conductivity of methylammonium lead halide by the molecular substructure
Claudia Caddeo, Claudio Melis, Maria Ilenia Saba, Alessio Filippetti, Luciano Colombo, Alessandro Mattoni
DOI: 10.1039/C6CP04246E
Toward an absolute NMR shielding scale using the spin-rotation tensor within a relativistic framework
I. Agustín Aucar, Sergio S. Gomez, Claudia G. Giribet, Gustavo A. Aucar
DOI: 10.1039/C6CP03355E
Factors controlling the CO intercalation of h-BN overlayers on Ru(0001)
Aiyi Dong, Qiang Fu, Hao Wu, Mingming Wei, Xinhe Bao
DOI: 10.1039/C6CP03660K
Adsorption thermodynamics of two-domain antifreeze proteins: theory and Monte Carlo simulations
Claudio F. Narambuena, Fabricio O. Sanchez Varretti, Antonio J. Ramirez-Pastor
DOI: 10.1039/C6CP03924C
您可能还喜欢
什么是3-表南美楝属二醇(CAS号:19942-04-2)?
3-表南美楝属二醇是一种具有特定立体化学结构的化合物,其分子式为C31H52O2,属于甾醇类化合物。它具有光学活性,是一种复杂的有机分子,主要存在于一些植物中。
3-羧基-5-碘苯甲酸甲酯(CAS号:50765-22-5)应用于哪些行业?
3-羧基-5-碘苯甲酸甲酯主要应用于医药行业,作为合成某些药物中间体的重要原料。此外,它还可能用于聚合物的改性、传感器的制备以及半导体材料的制备等领域。
什么是3-Bromoindolin-2-one(CAS号:22942-87-6)?
3-Bromoindolin-2-one是一种含有溴代基团的吲哚酮衍生物,分子式为C9H7BrNO。它是一种无色固体,具有一定的挥发性,熔点为158-159°C...
如何处理含有L-Lysyl-L-phenylalanyl-L-isoleucylglycyl-L-leucyl-L-methioninamide(CAS号:2990-43-4)的废料?
对于含有该化合物的废液,应先进行中和处理,然后根据其毒性和活性选择合适的处置方法。可以考虑焚烧处理或由专业的化学品废物处理公司进行无害化处理。处理过程中需注意环...
ANGIOTENSIN 1/2 + A (2 - 8)(CAS号:51833-76-2)的物理化学性质是什么?
ANGIOTENSIN 1/2 + A (2 - 8)是一种蛋白质类化合物,具有典型的蛋白质性质。它的分子量约为5900 Da。该化合物在水中具有一定的溶解性,...
如何储存2-甲基硫代嘧啶-5-硼酸频那酯(CAS号:940284-18-4)?
应将该化合物存放在阴凉干燥、通风良好的地方,避免阳光直射。建议将化合物密封保存在避光的、干燥的容器中,远离火源和高温环境。
什么是苏丹红IV氘代物 标准品(CAS号:1014689-18-9)?
苏丹红IV氘代物 标准品是一种含有氘代标记的苏丹红IV化合物,是一种用于化合物分析、结构确证以及代谢研究的标准物质。
(+)-2-Amino-6-propionamido-d3-tetrahydrobenzothiazole(CAS号:1217680-69-7)适用哪些法规指南?
该化合物需要遵循《全球化学品统一分类和标签制度》(GHS)中的分类和标签要求,具体分类需依据其毒性和物理化学性质。此外,还需要符合《欧盟化学品注册、评估、授权和...
如何储存2-氨基-2-(2-吡啶)乙酸乙酯(CAS号:55243-15-7)?
2-氨基-2-(2-吡啶)乙酸乙酯应储存于阴凉、干燥、通风良好的环境中,避免高温和光照。应使用密封容器储存,并远离易燃物、氧化剂和其他危险化学品。
3-羟基-4-甲氧基吡啶-2-羧酸(CAS号:210300-09-7)的主要用途是什么?
3-羟基-4-甲氧基吡啶-2-羧酸主要用于合成其他有机化合物,如药物合成、农药合成和染料合成等。此外,它还可用作中间体和试剂,在化学研究领域也有一定的应用。
来源期刊
Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.

![(3S,4aS,8aS)-2-[(2R,3S)-3-Amino-2-hydroxy-4-phenylbutyl]-N-(2-methyl-2-propanyl)decahydro-3-isoquinolinecarboxamide structure (3S,4aS,8aS)-2-[(2R,3S)-3-Amino-2-hydroxy-4-phenylbutyl]-N-(2-methyl-2-propanyl)decahydro-3-isoquinolinecarboxamide structure](https://cnstatic.chemtradehub.com/structs/136/136522-17-3-4d77.webp)

![3,7-Di(1,1':3',1''-terphenyl-5'-yl)-10,11,12,13-tetrahydrodiindeno[7,1-de:1',7'-fg][1,3,2]dioxaphosphocin-5-ol 5-oxide structure 3,7-Di(1,1':3',1''-terphenyl-5'-yl)-10,11,12,13-tetrahydrodiindeno[7,1-de:1',7'-fg][1,3,2]dioxaphosphocin-5-ol 5-oxide structure](https://cnstatic.chemtradehub.com/structs/135/1352810-38-8-3f10.webp)
