Morphology and phase evolution from CuS to Cu1.8S in a hydrothermal process and thermoelectric properties of Cu1.8S bulk†
Abstract
CuS microflowers self-assembled from nanosheets were prepared by hydrothermal synthesis (HS) using CuCl2·2H2O and CS(NH2)2 as raw materials and glycol as a solvent at 120 and 140 °C for 1.5 h. With increasing the hydrothermal temperature or reaction time, the CuS microflowers break up to Cu1.8S nanoparticles. The single phase Cu1.8S nanoparticles were obtained at 200 °C for 10 h. The evolution route of the phase structure and microstructure from CuS to Cu1.8S was investigated. The Cu1.8S particles were densified to bulk materials by applying spark plasma sintering (SPS) technology. The fine-grain bulk Cu1.8S had a Seebeck coefficient of 73 μV K−1 and a thermal conductivity of 1.15 W m−1 K−1 at 673 K, resulting in an enhanced ZT value of 0.49 at 673 K, which is the highest value for pristine Cu1.8S in the literature. Our work indicates that the Cu1.8S system is a potential candidate with low costs and toxicity in mid-temperature thermoelectric application.