Page 46 - Read Online
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Shanmugasundaram et al. Energy Mater. 2025, 5, 500100 https://dx.doi.org/10.20517/energymater.2024.304 Page 21 of 23
17. Ge, B.; Li, R.; Zhu, M.; Yu, Y.; Zhou, C. Deformation mechanisms of inorganic thermoelectric materials with plasticity. Adv. Energy.
Sustain. Res. 2024, 5, 2300197. DOI
18. Zhang, Y.; Li, Z.; Singh, S.; et al. Defect-engineering-stabilized AgSbTe with high thermoelectric performance. Adv. Mater. 2023, 35,
2
2208994. DOI
19. Kihou, K.; Kunioka, H.; Nishiate, H.; Lee, C. Thermoelectric properties of yttrium-doped Mg (Sb,Bi) synthesized by melting method.
3 2
J. Mater. Res. Technol. 2021, 10, 438-44. DOI
20. Liu, W.; Yin, L.; Li, L.; et al. Grain boundary re-crystallization and sub-nano regions leading to high plateau figure of merit for Bi Te
2 3
nanoflakes. Energy. Environ. Sci. 2023, 16, 5123-35. DOI
21. Li, X.; Gilbert, J. A.; Trask, S. E.; et al. Investigating ternary Li-Mg-Si Zintl phase formation and evolution for Si anodes in Li-ion
batteries with Mg(TFSI) electrolyte additive. Chem. Mater. 2021, 33, 4960-70. DOI
2
22. Yuan, Z.; Dahliah, D.; Hasan, M. R.; et al. Discovery of the Zintl-phosphide BaCd P as a long carrier lifetime and stable solar
2 2
absorber. Joule 2024, 8, 1412-29. DOI
23. Zhu, Y.; Zhang, W.; Liu, Z.; Li, L. Hydrogen storage properties of the Zintl phase alloy SrAl doped with TiF . J. Alloys. Compd.
2 3
2010, 492, 277-81. DOI
24. Brehm, J. A. Predicted bulk photovoltaic effect in hydrogenated Zintl compounds. J. Mater. Chem. C. 2018, 6, 1470-5. DOI
25. Bhardwaj, A.; Misra, D. K. Enhancing thermoelectric properties of a p-type Mg Sb -based Zintl phase compound by Pb substitution in
3 2
the anionic framework. RSC. Adv. 2014, 4, 34552-60. DOI
26. Zhou, Z.; Han, G.; Lu, X.; Wang, G.; Zhou, X. High-performance magnesium-based thermoelectric materials: progress and challenges.
J. Magnes. Alloys. 2022, 10, 1719-36. DOI
27. Han, Z.; Li, J.; Jiang, F.; et al. Room-temperature thermoelectric materials: challenges and a new paradigm. J. Materiomics. 2022, 8,
427-36. DOI
28. Xiao, S.; Peng, K.; Zhou, Z.; et al. Realizing Cd and Ag codoping in p-type Mg Sb toward high thermoelectric performance. J.
3 2
Magnes. Alloys. 2023, 11, 2486-94. DOI
29. Witting, I. T.; Ricci, F.; Chasapis, T. C.; Hautier, G.; Snyder, G. J. The thermoelectric properties of n-type bismuth telluride: bismuth
selenide alloys Bi Te Se . Research 2020, 2020. DOI
3-x
x
2
30. Xie, S.; Liu, K.; Li, C.; et al. Revealing the temperature-driven Lifshitz transition in p -type Mg Sb -based thermoelectric materials.
3 2
Appl. Phys. Lett. 2024, 124, 093902. DOI
31. Condron, C. L.; Kauzlarich, S. M.; Gascoin, F.; Snyder, G. J. Thermoelectric properties and microstructure of Mg Sb . J. Solid. State.
2
3
Chem. 2006, 179, 2252-7. DOI
32. Shi, X.; Wang, X.; Li, W.; Pei, Y. Advances in thermoelectric Mg Sb and its derivatives. Small. Methods. 2018, 2, 1800022. DOI
3 2
33. Jiang, J.; Zhu, H.; Niu, Y.; et al. Achieving high room-temperature thermoelectric performance in cubic AgCuTe. J. Mater. Chem. A.
2020, 8, 4790-9. DOI
34. Liu, M.; Guo, M.; Zhu, J.; et al. High-performance CaMg Bi -based thermoelectric materials driven by lattice softening and orbital
2 2
alignment via cadmium doping. Adv. Funct. Mater. 2024, 34, 2316075. DOI
35. Li, J.; Liu, K.; Ma, X.; et al. Improvement of the thermoelectric properties of p-type Mg Sb by Mg-site double substitution. Inorg.
3 2
Chem. 2024, 63, 20126-32. DOI
36. Zhang, Y.; Liang, J.; Liu, C.; et al. Enhancing thermoelectric performance in P-type Mg Sb -based Zintls through optimization of band
2
3
gap structure and nanostructuring. J. Mater. Sci. Technol. 2024, 170, 25-32. DOI
37. Liang, Z.; Xu, C.; Song, S.; Shi, X.; Ren, W.; Ren, Z. Enhanced thermoelectric performance of p-type Mg Sb for reliable and low-cost
2
3
all-Mg Sb -based thermoelectric low-grade heat recovery. Adv. Funct. Mater. 2023, 33, 2210016. DOI
3 2
38. Radha, S.; Mani, J.; Rajkumar, R.; Arivanandhan, M.; Jayavel, R.; Anbalagan, G. Effect of Mn and Te doping on thermoelectric
transport properties of Mg Mn Sb Te (0 ≤ x ≤ 0.05) Zintl compound: synergistic approach for enhanced thermoelectric
3.2-x x 1.97 0.03
performance. Mater. Sci. Semicond. Process. 2023, 165, 107674. DOI
39. Kannan, V. P.; Lourdhusamy, V.; Paulraj, I.; Liu, C. J.; Madanagurusamy, S. Enhanced thermoelectric performance of p-type Mg Zn x
3-x
Sb /Sb composites: the role of ZnSb/Sb composites. ACS. Appl. Mater. Interfaces. 2023, 15, 47058-69. DOI
2
40. Ren, Z.; Shuai, J.; Mao, J.; et al. Significantly enhanced thermoelectric properties of p-type Mg Sb via co-doping of Na and Zn. Acta.
3
2
Mater. 2018, 143, 265-71. DOI
41. Pack, J. D.; Monkhorst, H. J. “Special points for Brillouin-zone integrations”-a reply. Phys. Rev. B. 1977, 16, 1748-9. DOI
42. Ohno, S.; Imasato, K.; Anand, S.; et al. Phase boundary mapping to obtain n-type Mg Sb -based thermoelectrics. Joule 2018, 2, 141-
2
3
54. DOI
43. Gong, Y.; Dou, W.; Lu, B.; et al. Divacancy and resonance level enables high thermoelectric performance in n-type SnSe polycrystals.
Nat. Commun. 2024, 15, 4231. DOI
44. Song, L.; Zhang, J.; Iversen, B. B. Thermal stability of p-type Ag-doped Mg Sb thermoelectric materials investigated by powder X-
3 2
ray diffraction. Phys. Chem. Chem. Phys. 2019, 21, 4295-305. DOI
45. Tiadi, M.; Battabyal, M.; Jain, P. K.; Chauhan, A.; Satapathy, D. K.; Gopalan, R. Enhancing the thermoelectric efficiency in p-type
Mg Sb via Mg site co-doping. Sustain. Energy. Fuels. 2021, 5, 4104-14. DOI
3 2
46. Sidharth, D.; Srinivasan, B.; Nedunchezhian, A. A.; Thirukumaran, P.; Arivanandhan, M.; Jayavel, R. Enhancing the thermoelectric
performance of nanostructured ZnSb by heterovalent bismuth substitution. J. Phys. Chem. Solids. 2022, 160, 110303. DOI
47. Phillips, R.; Jolley, K.; Zhou, Y.; Smith, R. Influence of temperature and point defects on the X-ray diffraction pattern of graphite.

