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Superlattice thin-film thermoelectric materials and devices

Publication ,  Conference
Venkatasubramanian, R; O'Quinn, B; Siivola, E; Coonley, K; Addepally, P; Napier, M; Colpitts, T
Published in: Materials Research Society Symposium - Proceedings
January 1, 2003

Thin-film nano-structured materials offer the potential to enhance the performance of thermoelectrics, with near-term capabilities like small-footprint coolers for lasers and microprocessors. Our recent focus has been to transition the enhanced figure-of-merit (ZT) in ptype Bi2Te3/Sb 2Te3 and n-type Bi2Te3/Bi 2Te3-xSex superlattices to performance at the module level with several device demonstrations. We have been able to obtain a best ZT of ∼2 in a p-n couple, the fundamental cooling or power conversion unit in an operational module. In addition, we have been able to demonstrate p-n couple ZT of as much as 1.6 from heat-to-power efficiency data. The thermal interface resistances between the active device and the external heat source have been optimized. A power level of 38 mW per couple for a δT of about 107K, with 4-micron-thick element, was obtained. This translates to an active power density of ∼54 W/cm2 and a mini-module power density of ∼10.5 W/cm2. In short, power devices with thin-film superlattices are a real possibility. In the cooling arena, we have been able to obtain over 50K active cooling with thin-film modules, useable in several laser and microprocessor cooling needs. This is in spite of severe thermal management issues that had to be overcome noting that the "true" hot-side temperature, and hence the "true" δT, across the device are much higher. Even so, we have p-n superlattice couples that show twice the cooling δTmax, compared to the best bulk p-n couples at cryogenic temperatures. Some of the challenges that remain to be addressed in the full development of this materials technology and thoughts on further progress in nano-structured materials are presented.

Duke Scholars

Published In

Materials Research Society Symposium - Proceedings

DOI

ISSN

0272-9172

Publication Date

January 1, 2003

Volume

793

Start / End Page

51 / 58
 

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Venkatasubramanian, R., O’Quinn, B., Siivola, E., Coonley, K., Addepally, P., Napier, M., & Colpitts, T. (2003). Superlattice thin-film thermoelectric materials and devices. In Materials Research Society Symposium - Proceedings (Vol. 793, pp. 51–58). https://doi.org/10.1557/proc-793-s2.3
Venkatasubramanian, R., B. O’Quinn, E. Siivola, K. Coonley, P. Addepally, M. Napier, and T. Colpitts. “Superlattice thin-film thermoelectric materials and devices.” In Materials Research Society Symposium - Proceedings, 793:51–58, 2003. https://doi.org/10.1557/proc-793-s2.3.
Venkatasubramanian R, O’Quinn B, Siivola E, Coonley K, Addepally P, Napier M, et al. Superlattice thin-film thermoelectric materials and devices. In: Materials Research Society Symposium - Proceedings. 2003. p. 51–8.
Venkatasubramanian, R., et al. “Superlattice thin-film thermoelectric materials and devices.” Materials Research Society Symposium - Proceedings, vol. 793, 2003, pp. 51–58. Scopus, doi:10.1557/proc-793-s2.3.
Venkatasubramanian R, O’Quinn B, Siivola E, Coonley K, Addepally P, Napier M, Colpitts T. Superlattice thin-film thermoelectric materials and devices. Materials Research Society Symposium - Proceedings. 2003. p. 51–58.

Published In

Materials Research Society Symposium - Proceedings

DOI

ISSN

0272-9172

Publication Date

January 1, 2003

Volume

793

Start / End Page

51 / 58