Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/170288
Title: Challenges and opportunities in low-dimensional thermoelectric nanomaterials
Authors: Dong, Jinfeng
Suwardi, Ady
Tan, Xian Yi
Jia, Ning
Saglik, Kivanc
Ji, Rong
Wang, Xizu
Zhu, Qiang
Xu, Jianwei
Yan, Qingyu
Keywords: Engineering::Materials
Issue Date: 2023
Source: Dong, J., Suwardi, A., Tan, X. Y., Jia, N., Saglik, K., Ji, R., Wang, X., Zhu, Q., Xu, J. & Yan, Q. (2023). Challenges and opportunities in low-dimensional thermoelectric nanomaterials. Materials Today, 66, 137-157. https://dx.doi.org/10.1016/j.mattod.2023.04.021
Project: RG128/21
RT6/22
A19D9a0096
C210112022
Journal: Materials Today
Abstract: Thermoelectric materials can convert heat into electrical energy, which can potentially be used to improve the fuel efficiency of conventional heat engines. In recent decades, significant progress has been made in the thermoelectric field, where nanotechnology has played an important role. The quantum confinement effect has been shown to increase the Seebeck coefficient, while the nanostructures can effectively scatter phonons. In this review, the latest advances in thermoelectric nanomaterials were summarized and the challenges they face in thermoelectric-device fabrication were discussed. Firstly, the major problems hindering the development of nanowire-, thin-film-, and nanocrystal-based thermoelectric devices were discussed, followed by possible solutions in the subsequent sections. The unique carrier transport properties of one-dimensional nanowires that result from their distinct band structures were then examined. The distinct diffusive thermal transport, caused by boundary scattering of phonons, was also discussed. Next, the unique thermoelectric transport properties of superlattice thin films and two-dimensional electron gas were focused on. In addition, the different types of flexible thin films and strategies to improve their thermoelectric performance were described. Subsequently, the electrical transport properties of thermoelectric bulk samples consolidated from solution-processed nanocrystals, including the synthesis principles and modulation doping were discussed. Furthermore, the rational design of distinct microstructures which can selectively scatter phonons was elaborated on. Finally, we prospect for future developments in thermoelectric nanomaterials.
URI: https://hdl.handle.net/10356/170288
ISSN: 1369-7021
DOI: 10.1016/j.mattod.2023.04.021
Schools: School of Materials Science and Engineering 
Organisations: Institute of Materials Research and Engineering, A*STAR
Rights: © 2023 Elsevier Ltd. All rights reserved.
Fulltext Permission: none
Fulltext Availability: No Fulltext
Appears in Collections:MSE Journal Articles

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