TY - JOUR
T1 - Thermoelectric power generation in the core of a nuclear reactor
AU - Kempf, Nicholas
AU - Saeidi-Javash, Mortaza
AU - Xu, Haowei
AU - Cheng, Sheng
AU - Dubey, Megha
AU - Wu, Yaqiao
AU - Daw, Joshua
AU - Li, Ju
AU - Zhang, Yanliang
N1 - Funding Information:
This work was supported by the U.S. Department of Energy under award DE-NE0008812. The authors would like to acknowledge Dr. David Carpenter at the MIT Nuclear Reactor Lab for providing support on the in-core irradiation of the thermoelectric generator, and Dr. Gary Was and Dr. Ovidiu Toader at Michigan Ion Beam Laboratory for providing support on the ion irradiation of the thermoelectric materials. JL acknowledges support by DTRA (Award No. HDTRA1-20-2-0002) Interaction of Ionizing Radiation with Matter (IIRM) University Research Alliance (URA).
Funding Information:
This work was supported by the U.S. Department of Energy under award DE-NE0008812. The authors would like to acknowledge Dr. David Carpenter at the MIT Nuclear Reactor Lab for providing support on the in-core irradiation of the thermoelectric generator, and Dr. Gary Was and Dr. Ovidiu Toader at Michigan Ion Beam Laboratory for providing support on the ion irradiation of the thermoelectric materials. JL acknowledges support by DTRA (Award No. HDTRA1-20-2-0002) Interaction of Ionizing Radiation with Matter (IIRM) University Research Alliance (URA).
Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/9/15
Y1 - 2022/9/15
N2 - Thermoelectric energy converters offer a promising solution to generate electrical power using heat in the nuclear reactor core. Despite significant improvements in thermoelectric efficiency of nanostructured materials, the performance of these advanced materials has yet to be demonstrated in the harsh radiation environment of a reactor core. Herein, we demonstrate a thermoelectric generator (TEG) made from nanostructured bulk half-Heusler (HH) materials generating stable electrical power density > 1140 W/m2 after 30 days in the MIT Nuclear Research Reactor under an unprecedented fast-neutron (>1 MeV) fluence of 1.5 × 1020 n/cm2. Despite an initial degradation due to irradiation damage when operating under relatively low temperatures, our TEG showed a 20-fold increase in power output when operating under high temperature due to in-situ annealing and resulting thermoelectric property recovery. First-principles modeling indicates that a chemically disordered metallic phase was formed under irradiation at lower temperatures, resulting in a drastic degradation in thermoelectric properties, while at sufficiently high temperatures the system returned to the initial chemically ordered HH phase and the thermoelectric properties recovered. Transmission electron microscopy and electron diffraction demonstrated that the chemically disordered phase was formed upon ion irradiation, confirming the prediction from first-principles simulations. The results suggest that with proper control over the TEG operating temperatures, the nanostructured bulk TEGs could produce stable electrical power and operate indefinitely in the core of a nuclear reactor.
AB - Thermoelectric energy converters offer a promising solution to generate electrical power using heat in the nuclear reactor core. Despite significant improvements in thermoelectric efficiency of nanostructured materials, the performance of these advanced materials has yet to be demonstrated in the harsh radiation environment of a reactor core. Herein, we demonstrate a thermoelectric generator (TEG) made from nanostructured bulk half-Heusler (HH) materials generating stable electrical power density > 1140 W/m2 after 30 days in the MIT Nuclear Research Reactor under an unprecedented fast-neutron (>1 MeV) fluence of 1.5 × 1020 n/cm2. Despite an initial degradation due to irradiation damage when operating under relatively low temperatures, our TEG showed a 20-fold increase in power output when operating under high temperature due to in-situ annealing and resulting thermoelectric property recovery. First-principles modeling indicates that a chemically disordered metallic phase was formed under irradiation at lower temperatures, resulting in a drastic degradation in thermoelectric properties, while at sufficiently high temperatures the system returned to the initial chemically ordered HH phase and the thermoelectric properties recovered. Transmission electron microscopy and electron diffraction demonstrated that the chemically disordered phase was formed upon ion irradiation, confirming the prediction from first-principles simulations. The results suggest that with proper control over the TEG operating temperatures, the nanostructured bulk TEGs could produce stable electrical power and operate indefinitely in the core of a nuclear reactor.
UR - https://www.scopus.com/pages/publications/85133940489
UR - https://www.mendeley.com/catalogue/46153e41-513f-333b-9e8d-d80a30929fa5/
U2 - 10.1016/j.enconman.2022.115949
DO - 10.1016/j.enconman.2022.115949
M3 - Article
AN - SCOPUS:85133940489
SN - 0196-8904
VL - 268
JO - Energy Conversion and Management
JF - Energy Conversion and Management
M1 - 115949
ER -