TY - JOUR A1 - Forero-Sandoval, I. A1 - Cervantes-Alvarez, F. A1 - Ramirez-Rincon, J. A1 - Macias, J. A1 - Pech May, Nelson Wilbur A1 - Ordonez-Miranda, J. A1 - Alvarado-Gil, J. T1 - Percolation Threshold of the Thermal, Electrical and Optical Properties of Carbonyl-Iron Microcomposites JF - Applied Composite Materials N2 - Composites made up of microparticles embedded in a polymeric matrix have attracted increasing attention due to the possibility of tailoring their physical properties by adding the adequate quantity of fillers. As the concentration of these fillers increases, their connectivity changes drastically at a given threshold and therefore the electrical, thermal and optical properties of these composites are expected to exhibit a percolation effect. In this work, the thermal and electrical conductivities along with the emissivity of Composites composed of carbonyl-iron microparticles randomly distributed in a polyester resin matrix are measured, for volume fractions ranging from 0 to 0.55. It is shown that both the thermal and electrical conductivities increase with the particles’ concentration, such that their percolation threshold appears at volume fractions of 0.46 and 0.38, respectively. The emissivity, on the other hand, decreases as the fillers’ concentration increases, such that it exhibits a substantial decay at a volume fraction of 0.41. The percolation threshold of the emissivity is thus higher than that of the thermal conductivity, but lower than the electrical conductivity one. This dispersion on the percolation concentration is justified by the different physical mechanisms required to activate the electrical, thermal, and optical responses of the considered composites. The obtained results thus show that the percolation phenomenon can efficiently be used to enhance or reduce the physical properties of particulate composites. KW - Thermal conductivity KW - Emissivity KW - Thermal percolation threshold PY - 2021 DO - https://doi.org/10.1007/s10443-021-09869-z VL - 28 IS - 2 SP - 447 EP - 463 PB - Springer AN - OPUS4-52355 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Giovannelli, F. A1 - Chen, Cong A1 - Díaz-Chao, P. A1 - Guilmeau, E. A1 - Delorme, F. T1 - Thermal conductivity and stability of Al-doped ZnO nanostructured ceramics JF - Journal of the European Ceramic Society N2 - Pure and Al-doped ZnO powders have been sintered by Spark Plasma Sintering. Al doping allows the ceramics to reach a relative density greater than 90% at a sintering temperature of 500°C. The morphology of powder nanoparticles impacts the final grain size of the sintered bulk compounds. A ceramic sintered from isotropic nanoparticles of 30 nm in diameter can reach an average grain size of 110 nm, whereas a ceramic sintered from platelets and isotropic nanoparticles exhibits an average grain size in the submicrometric range. The influence of ceramic grain size on the thermal conductivity has been investigated. It shows that substantial decrease of the grain size from several microns down to 100 nm reduces the thermal conductivity from 29.5 to 7.8 W/m K at 100°C. The stability of nanostructured ceramic has also been checked. After SPS, an annealing at 500°C in air also leads to grain growth. KW - Spark plasma sintering KW - Oxide KW - Thermal conductivity KW - Nanostructuring PY - 2018 DO - https://doi.org/10.1016/j.jeurceramsoc.2018.07.032 SN - 0955-2219 VL - 38 IS - 15 SP - 5015 EP - 5020 PB - Elsevier Science CY - Amsterdam AN - OPUS4-45740 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -