Three dimensional architected thermoelectric devices with high toughness and power conversion efficiency
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
Author(s)
Related Research Unit(s)
Detail(s)
Original language | English |
---|---|
Article number | 2069 |
Number of pages | 10 |
Journal / Publication | Nature Communications |
Volume | 14 |
Online published | 12 Apr 2023 |
Publication status | Published - 2023 |
Link(s)
DOI | DOI |
---|---|
Attachment(s) | Documents
Publisher's Copyright Statement
|
Link to Scopus | https://www.scopus.com/record/display.uri?eid=2-s2.0-85152336286&origin=recordpage |
Permanent Link | https://scholars.cityu.edu.hk/en/publications/publication(f7df5e2f-0ccb-4821-b536-05840b8b1d94).html |
Abstract
For decades, the widespread application of thermoelectric generators has been plagued by two major limitations: heat stagnation in its legs, which limits power conversion efficiency, and inherent brittleness of its constituents, which accelerates thermoelectric generator failure. While notable progress has been made to overcome these quintessential flaws, the state-of-the-art suffers from an apparent mismatch between thermoelectric performance and mechanical toughness. Here, we demonstrate an approach to potentially enhance the power conversion efficiency while suppressing the brittle failure in thermoelectric materials. By harnessing the enhanced thermal impedance induced by the cellular architecture of microlattices with the exceptional strength and ductility (>50% compressive strain) derived from partial carbonization, we fabricate three-dimensional (3D) architected thermoelectric generators that exhibit a specific energy absorption of ~30 J g−1 and power conversion efficiency of ~10%. We hope our work will improve future thermoelectric generator fabrication design through additive manufacturing with excellent thermoelectric properties and mechanical robustness. © The Author(s) 2023
Research Area(s)
Citation Format(s)
Three dimensional architected thermoelectric devices with high toughness and power conversion efficiency. / Karthikeyan, Vaithinathan; Surjadi, James Utama; Li, Xiaocui et al.
In: Nature Communications, Vol. 14, 2069, 2023.
In: Nature Communications, Vol. 14, 2069, 2023.
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
Download Statistics
No data available