Year |
Citation |
Score |
2020 |
Hussain AM, Huang YL, Pan KJ, Robinson I, Wang X, Wachsman E. A Redox-Robust Ceramic Anode Supported Low-Temperature Solid Oxide Fuel Cell. Acs Applied Materials & Interfaces. PMID 32195575 DOI: 10.1021/Acsami.0C01611 |
0.702 |
|
2020 |
Hussain AM, Robinson IA, Huang Y, Pan K, Wachsman ED. Highly Durable, Surface Modified SOFCs Running on Hydrocarbon Fuels at 600 °C Journal of the Electrochemical Society. 167: 104509. DOI: 10.1149/1945-7111/Ab9C8A |
0.589 |
|
2019 |
Pan K, Hussain AM, Huang Y, Gong Y, Cohn G, Ding D, Wachsman ED. Evolution of Solid Oxide Fuel Cells via Fast Interfacial Oxygen Crossover Acs Applied Energy Materials. 2: 4069-4074. DOI: 10.1021/ACSAEM.9B00185 |
0.664 |
|
2018 |
Hussain AM, Pan KJ, Huang YL, Robinson IA, Gore C, Wachsman ED. Highly Performing Chromate-based Ceramic Anodes (Y0.7Ca0.3Cr1-xCuxO3-δ) for Low-Temperature Solid Oxide Fuel Cells. Acs Applied Materials & Interfaces. PMID 30257084 DOI: 10.1021/Acsami.8B07987 |
0.66 |
|
2017 |
Abdul Jabbar MH, Robinson I, Pan K, Blackburn BM, Pellegrinelli C, Huang Y, Wachsman ED. Chromate-Based Oxide Anodes for Low-Temperature Operating Solid Oxide Fuel Cells Ecs Transactions. 78: 1319-1325. DOI: 10.1149/07801.1319ECST |
0.687 |
|
2017 |
Pan K, Hussain AM, Wachsman ED. Investigation on Sr0.2Na0.8Nb1−xVxO3 (x=0.1, 0.2, 0.3) as new ceramic anode materials for low-temperature solid oxide fuel cells Journal of Power Sources. 347: 277-282. DOI: 10.1016/J.Jpowsour.2017.02.019 |
0.697 |
|
2016 |
Pan KL, Chen MC, Yu SJ, Yan SY, Chang MB. Enhancement of NO Decomposition Efficiency Achieved with La-based Perovskite-type Catalyst. Journal of the Air & Waste Management Association (1995). PMID 26934380 DOI: 10.1080/10962247.2016.1158133 |
0.308 |
|
2016 |
Hussain AM, Pan KJ, Robinson IA, Hays T, Wachsman ED. Stannate-based ceramic oxide as anode materials for oxide-ion conducting low-temperature solid oxide fuel cells Journal of the Electrochemical Society. 163: F1198-F1205. DOI: 10.1149/2.0691610Jes |
0.706 |
|
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