Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong , Squires Way, North Wollongong, New South Wales 2500, Australia.
J Am Chem Soc. 2014 Dec 17;136(50):17626-33. doi: 10.1021/ja510433j. Epub 2014 Dec 4.
Surfactant-free CuAgSe nanoparticles were successfully synthesized on a large scale within a short reaction time via a simple environmentally friendly aqueous approach under room temperature. The nanopowders obtained were consolidated into pellets for investigation of their thermoelectric properties between 3 and 623 K. The pellets show strong metallic characteristics below 60 K and turn into an n-type semiconductor with increasing temperature, accompanied by changes in the crystal structure (i.e., from the pure tetragonal phase into a mixture of tetragonal and orthorhombic phases), the electrical conductivity, the Seebeck coefficient, and the thermal conductivity, which leads to a figure of merit (ZT) of 0.42 at 323 K. The pellets show further interesting temperature-dependent transition from n-type into p-type in electrical conductivity arising from phase transition (i.e., from the mixture phases into cubic phase), evidenced by the change of the Seebeck coefficient from -28 μV/K into 226 μV/K at 467 K. The ZT value increased with increasing temperature after the phase transition and reached 0.9 at 623 K. The sintered CuAgSe pellets also display excellent stability, and there is no obvious change observed after 5 cycles of consecutive measurements. Our results demonstrate the potential of CuAgSe to simultaneously serve (at different temperatures) as both an n-type and a p-type thermoelectric material.
在室温下,通过一种简单的环保水相法,成功地在短时间内大规模合成了无表面活性剂的 CuAgSe 纳米粒子。所得的纳米粉末被压制成颗粒,用于研究其在 3 到 623 K 之间的热电性能。在 60 K 以下,这些颗粒表现出强烈的金属特性,随着温度的升高转变为 n 型半导体,并伴随着晶体结构的变化(即从纯四方相转变为四方相和正交相的混合物)、电导率、塞贝克系数和热导率的变化,这导致在 323 K 时的品质因数(ZT)达到 0.42。这些颗粒在电导率中表现出进一步有趣的温度依赖性从 n 型到 p 型的转变,这是由相变引起的(即从混合相转变为立方相),这可以通过塞贝克系数从-28 μV/K 变为 467 K 时的 226 μV/K 来证明。相变后,ZT 值随温度升高而升高,在 623 K 时达到 0.9。烧结的 CuAgSe 颗粒还表现出优异的稳定性,在连续测量 5 次循环后没有观察到明显的变化。我们的结果表明,CuAgSe 有潜力在不同温度下同时作为 n 型和 p 型热电材料使用。