A new type of nanocrystalline samarium-doped-ceria/yttrium-stabilized-zirconia (SDC/YSZ) heterophase thin film electrolytes was synthesized on MgO and Si substrates by spin coating and thermal treatment of SDC-nanoparticle-incorporated polymeric precursors. In the heterophase films, SDC nanoparticles were uniformly dispersed in a nanocrystalline YSZ matrix. The heterophase structure was stable when fired in air at temperatures up to 850 °C. The nanocrystalline heterophase thin films exhibited electrical conductivities significantly higher than that of the phase-pure YSZ and SDC nanocrystalline thin films at reduced temperatures. The effects of SDC grain size and volume fraction on the electrical conductivity of the heterophase films were also studied.
A new type of nanocrystalline samarium-doped-ceria/yttrium-stabilized-zirconia (SDC/YSZ) heterophase thin film electrolytes was synthesized on MgO and Si substrates by spin coating and thermal treatment of SDC-nanoparticle-incorporated polymeric precursors. In the heterophase films, SDC nanoparticles were uniformly dispersed in a nanocrystalline YSZ matrix. The heterophase structure was stable when fired in air at temperatures up to 850 °C. The nanocrystalline heterophase thin films exhibited electrical conductivities significantly higher than that of the phase-pure YSZ and SDC nanocrystalline thin films at reduced temperatures. The effects of SDC grain size and volume fraction on the electrical conductivity of the heterophase films were also studied.
Low-cost, reliable, miniaturized gas sensors capable of fast, accurate, and in-situ monitoring of gas compositions in harsh environment are essential in developing high-efficiency, clean energy technologies. These sensors permit intelligent process control and optimization of power plant operations, which improves the energy efficiency and system reliability, reduces emissions, and minimizes the maintenance cost. In the past few decades, significant progress has been made in developing physical sensors for measuring various physical quantities under high temperature and high pressure conditions. However, currently available gas chemical sensors cannot withstand the hostile environment found in fossil fuel energy systems. In this paper, we present our exploratory research on nanomaterial enabled fiber optic gas sensors for in-situ chemical monitoring under high temperatures.