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This paper presents a study of the synergistic effects on sintering activity and the electrical performance of a CuO and FeO codoped gadolinium-doped ceria (GDC) electrolyte. The isothermal sintering behavior is investigated, and the viscous flow sintering mechanism is validated. The findings indicate that when the molar ratio of CuO to FeO is 3:1, the sintering temperature can be reduced to 980 °C, which is approximately 450 °C lower than that of GDC (>1450 °C). The lowest sintering activation energy is found to be 389 kJ/mol when the molar ratio of CuO to FeO is 3:1. Additionally, the concept named "macrodensification temperature" is proposed in this research to describe the connection of the densification process at the microstructure and macrostructure scale. The macrodensification temperature is further verified by quasi- observation and isothermal testing, meanwhile, Cu-Fe-Gd-O and Cu-Ce-O phases, which are beneficial for low-temperature sintering are first found in this work. Moreover, when the molar ratio of CuO to FeO is 3:1, the ionic conductivity reaches 0.041 S/cm@700 °C, which is 10% higher than that of GDC. The highest performance of the anode-supported cell is found when the electrolyte doping ratio of CuO to FeO equals 3:1. The open-circuit voltage is observed to be 0.82 V@700 °C, accompanied by a high-power density of 1.2 W/cm@700 °C. The cell performance with GDC as the electrolyte is found to be 0.8 W/cm@700 °C. In conclusion, the combined effects of CuO and FeO doping in GDC may offer a promising avenue for enhancing electrolyte performance and extending its applications to low-temperature solid oxide fuel cells (LT-SOFCs).
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http://dx.doi.org/10.1021/acsami.5c00238 | DOI Listing |
ChemSusChem
August 2025
School of Chemistry and Chemical Engineering, Yangzhou University, 180 Si-Wang-Ting Road, Yangzhou, 225002, P. R. China.
In recent years, p-type CuFeO delafossite has attracted considerable interest as a cost-effective H evolution photocatalyst. However, the intrinsic alternating CuO/FeO layered architecture creates a high energy barrier for interlayer charge transfer, which causes rapid bulk recombination of photogenerated electron-hole pairs, severely limiting their photocatalytic reactivity. In this study, CuFeO nanosheets are designed with electron-rich Co sites, which induced enhancement of dipole moment and thereby built-in electric field driving charge separation efficiently.
View Article and Find Full Text PDFSci Rep
July 2025
Data-Driven Inorganic Materials Group, Center for Basic Research on Materials, National Institute for Materials Science (NIMS), 1-2-1 Sengen, Tsukuba, Ibaraki, 305-0047, Japan.
Thermoelectric (TE) materials offer a promising pathway toward achieving carbon neutrality by converting waste heat into electricity. The enhancement of their figure-of-merit (zT) depends on optimizing the composition of materials and nanostructures, reducing the thermal conductivity, and increasing the power factor. CuSe, a superionic material, achieves a zT of 0.
View Article and Find Full Text PDFExp Parasitol
August 2025
Laboratory of Parasitology, Vector Biology, Nanotechnology, Department of Zoology, The University of Gour Banga, Malda, 732103, West Bengal, India. Electronic address:
The recurring global outbreaks of mosquito-borne diseases and the lack of vaccines, and preventive therapeutic approaches to combat diseases coupled with insecticide resistance, eventually emphasize the necessity of developing biological system-focused mosquito control strategies. In the present study, aqueous leaf extract from the Phyllanthus acidus L. plant was used to synthesize the metal nanoparticles (MNPs) such as silver, copper oxide, iron oxide, and zinc oxide, characterization has been carried out and their efficacies were also tested against the early 3rd instar larvae of the major mosquito vectors.
View Article and Find Full Text PDFEnviron Sci Technol
June 2025
Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100190, P. R. China.
Electronic metal-support interaction (EMSI) has been widely explored in the catalytic degradation of volatile organic compounds (VOCs) owing to the formation of special interfacial sites. Herein, the EMSI effect was engineered by constructing the serial Pt catalysts supported on CuO-FeO bimetal oxide (Pt/CFO). Among them, the 0.
View Article and Find Full Text PDFACS Appl Mater Interfaces
May 2025
State Key Laboratory for Mechanical Behavior of Materials, School of Materials Science and Engineering, Xi'an Jiao-Tong University, Xi'an, Shannxi 710049, China.
This paper presents a study of the synergistic effects on sintering activity and the electrical performance of a CuO and FeO codoped gadolinium-doped ceria (GDC) electrolyte. The isothermal sintering behavior is investigated, and the viscous flow sintering mechanism is validated. The findings indicate that when the molar ratio of CuO to FeO is 3:1, the sintering temperature can be reduced to 980 °C, which is approximately 450 °C lower than that of GDC (>1450 °C).
View Article and Find Full Text PDF