材料科学
纳米复合材料
纳米材料
热电效应
纳米技术
纳米颗粒
纳米晶
热电材料
纳米尺度
热导率
复合材料
热力学
物理
作者
María Ibáñez,Reza R. Zamani,Stéphane Gorsse,Jiandong Fan,Silvia Ortega,Doris Cadavid,J.R. Morante,Jordi Arbiol,Andreu Cabot
出处
期刊:ACS Nano
[American Chemical Society]
日期:2013-02-28
卷期号:7 (3): 2573-2586
被引量:143
摘要
The bottom-up assembly of nanocrystals provides access to a three-dimensional composition control at the nanoscale not attainable by any other technology. In particular, colloidal nanoheterostructures, with intrinsic multiphase organization, are especially appealing building blocks for the bottom-up production of nanocomposites. In the present work, we use PbTe–PbS as the model material system and thermoelectricity as the paradigmatic application to investigate the potential of the bottom-up assembly of core–shell nanoparticles to produce functional nanocomposites. With this goal in mind, a rapid, high-yield and scalable colloidal synthetic route to prepare grams of PbTe@PbS core–shell nanoparticles with unprecedented narrow size distributions and exceptional composition control is detailed. PbTe@PbS nanoparticles were used as building blocks for the bottom-up production of PbTe–PbS nanocomposites with tuned composition. In such PbTe–PbS nanocomposites, synergistic nanocrystal doping effects result in up to 10-fold higher electrical conductivities than in pure PbTe and PbS nanomaterials. At the same time, the acoustic impedance mismatch between PbTe and PbS phases and a partial phase alloying provide PbTe–PbS nanocomposites with strongly reduced thermal conductivities. As a result, record thermoelectric figures of merit (ZT) of ∼1.1 were obtained from undoped PbTe and PbS phases at 710 K. These high ZT values prove the potential of the proposed processes to produce efficient functional nanomaterials with programmable properties.
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