TY - JOUR
T1 - High-Density Frenkel Defects as Origin of N-Type Thermoelectric Performance and Low Thermal Conductivity in Mg3Sb2-Based Materials
AU - Kanno, Tsutomu
AU - Tamaki, Hiromasa
AU - Yoshiya, Masato
AU - Uchiyama, Hiroshi
AU - Maki, Sachiko
AU - Takata, Masaki
AU - Miyazaki, Yuzuru
N1 - Funding Information:
The authors thank G. J. Snyder, M. Agne, and R. Hanus for fruitful discussion. The authors also thank H. Adachi, Y. Kaneko, and W. Saito for technical assistance. The synchrotron radiation experiments were performed at the BL44B2, BL35XU, and BL19B2 of SPring‐8 with the approval of RIKEN (Proposal No. 20170086, 20180072) and the Synchrotron Radiation Research Institute (JASRI) (Proposal No. 2019B1812 and 2019B1883). M.Y. was supported by Grant‐in‐Aid for Scientific Research on Innovative Areas “New Materials Science on Nanoscale Structures and Functions of Crystal Defect Cores” from the Japan Society for the Promotion of Science (JSPS) [grant number 19H05786].
Publisher Copyright:
© 2021 Wiley-VCH GmbH
PY - 2021/3/24
Y1 - 2021/3/24
N2 - Mg3Sb2-based intermetallic compounds with exceptionally high thermoelectric performance exhibit unconventional n-type dopability and anomalously low thermal conductivity, attracting much attention to the underlying mechanisms. To date, investigations have been limited to first-principle calculations and thermodynamic analysis of defect formation, and detailed experimental analysis on crystal structure and phonon modes has not been achieved. Here, a synchrotron X-ray diffraction study clarifies that, against a previous view of a simple crystal structure with a small unit cell, Mg3Sb2 is inherently a heavily disordered material with Frenkel defects, charge-neutral defect complexes of cation vacancies and interstitials. Ionic charge neutrality preserved in Mg3Sb2 is responsible for exotic n-type dopability, which is unachievable for other Zintl phase materials. The thermal conductivity of Mg3Sb2 exhibits deviation from the standard T−1 temperature dependency with strongly limited phonon transport due to a strain field. Inelastic X-ray scattering measurement reveals enhanced phonon scattering induced by disorder. The results will draw renewed attention to crystal defects and disorder as means to explore new high-performance thermoelectric materials.
AB - Mg3Sb2-based intermetallic compounds with exceptionally high thermoelectric performance exhibit unconventional n-type dopability and anomalously low thermal conductivity, attracting much attention to the underlying mechanisms. To date, investigations have been limited to first-principle calculations and thermodynamic analysis of defect formation, and detailed experimental analysis on crystal structure and phonon modes has not been achieved. Here, a synchrotron X-ray diffraction study clarifies that, against a previous view of a simple crystal structure with a small unit cell, Mg3Sb2 is inherently a heavily disordered material with Frenkel defects, charge-neutral defect complexes of cation vacancies and interstitials. Ionic charge neutrality preserved in Mg3Sb2 is responsible for exotic n-type dopability, which is unachievable for other Zintl phase materials. The thermal conductivity of Mg3Sb2 exhibits deviation from the standard T−1 temperature dependency with strongly limited phonon transport due to a strain field. Inelastic X-ray scattering measurement reveals enhanced phonon scattering induced by disorder. The results will draw renewed attention to crystal defects and disorder as means to explore new high-performance thermoelectric materials.
KW - Frenkel defects
KW - inelastic X-ray scattering
KW - thermoelectric materials
KW - X-ray diffraction
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U2 - 10.1002/adfm.202008469
DO - 10.1002/adfm.202008469
M3 - Article
AN - SCOPUS:85100171470
SN - 1616-301X
VL - 31
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 13
M1 - 2008469
ER -