4.8 Article

Three-Dimensional Nanostructured Bilayer Solid Oxide Fuel Cell with 1.3 W/cm2 at 450 °C

期刊

NANO LETTERS
卷 13, 期 9, 页码 4551-4555

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nl402661p

关键词

Solid oxide fuel cells; micro solid oxide fuel cells; low temperature solid oxide fuel cells; doped-ceria interlayer; atomic layer deposition; nanosphere lithography

资金

  1. Kwanjeong Educational Foundation
  2. National Research Foundation (NRF) of the Korean Ministry of Education, Science, and Technology (MEST) [2012R1A1A1014689, 2012R1A6A1029029]
  3. Center on Nanostructuring for Efficient Energy Conversion (CNEEC) at Stanford University, an Energy Frontier Research Center
  4. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-SC0001060]
  5. U.S. Department of Energy (DOE), Office of Science, Office of Basic Energy Sciences (BES), Materials Sciences and Engineering Division [DE-SC0001060]
  6. National Research Foundation of Korea [2012R1A1A1014689] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

Obtaining high power density at low operating temperatures has been an ongoing challenge in solid oxide fuel cells (SOFC), which are efficient engines to generate electrical energy from fuels. Here we report successful demonstration of a thin-film three-dimensional (3-D) SOFC architecture achieving a peak power density of 1.3 W/cm(2) obtained at 450 degrees C. This is made possible by nanostructuring of the ultrathin (60 nm) electrolyte interposed with a nanogranular catalytic interlayer at the cathode/electrolyte interface. We attribute the superior cell performance to significant reduction in both the ohmic and the polarization losses due to the combined effects of employing an ultrathin film electrolyte, enhancement of effective area by 3-D architecture, and superior catalytic activity by the ceria-based interlayer at the cathode. These insights will help design high-efficiency SOFCs that operate at low temperatures with power densities that are of practical significance.

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