Growth of quantum dot coated core-shell anisotropic nanowires for improved thermal and electronic transportopen access
- Authors
- Hou, Bo; Jung, Su-Ho; Zhang, Jingchao; Hong, Yang; Kim, Byung-Sung; Sohn, Jung Inn; Lee, Eun Kyung; Choi, Byoung Lyong; Whang, Dongmok; Cha, SeungNam; Kim, Jong Min
- Issue Date
- 17-Jun-2019
- Publisher
- AMER INST PHYSICS
- Citation
- APPLIED PHYSICS LETTERS, v.114, no.24
- Indexed
- SCI
SCIE
SCOPUS
- Journal Title
- APPLIED PHYSICS LETTERS
- Volume
- 114
- Number
- 24
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/7954
- DOI
- 10.1063/1.5100891
- ISSN
- 0003-6951
1077-3118
- Abstract
- Anisotropic nanowires are promising candidates for electronic thermal management due to their unique electrical and thermal properties. However, eco-friendly solution-processed nanomaterials with an elaborate morphology and microstructure for modulating thermal and charge transfer are still a considerable challenge. Herein, we present a simple but effective approach for synthesizing pseudo core-shell nanowires through quantum dot (QD)-like nanostructure coating (p-NW@QD) to generate exceptional electron-phonon transport properties. With the assistance of diphenyl ether as a coordination solvent, high crystallinity lead sulfide NWs can be fabricated with a large aspect ratio together with uniform QD coating. This p-NW@QD exhibits high electronic mobility (30.65cm(2)/Vs) as well as a diameter independent low thermal conductivity (1.53 +/- 1W/mK). Direct charge/heat carrier flow measurements and computational simulations demonstrate that the unusual electrical and thermal transport phenomenon is strongly dependent on the fast charge transport through the QD shell, and a slow phonon migration across the Umklapp process dominated NW cores. These findings indicate a significant step toward colloidal synthesis nanostructures for future high-performance nanoelectronics and thermal energy devices.
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Collections - College of Natural Science > Department of Physics > 1. Journal Articles

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