Page 144 - Read Online
P. 144
Page 20 of 21 Chen et al. Energy Mater. 2025, 5, 500120 https://dx.doi.org/10.20517/energymater.2024.311
discovery to advanced device manufacturing. Small. Sci. 2025, 5, 2300359. DOI
12. Deng, T.; Qiu, P.; Yin, T.; et al. High-throughput strategies in the discovery of thermoelectric materials. Adv. Mater. 2024, 36,
e2311278. DOI
13. Chen, G.; Dresselhaus, M. S.; Dresselhaus, G.; Fleurial, J.; Caillat, T. Recent developments in thermoelectric materials. Int. Mater.
Rev. 2003, 48, 45-66. DOI
14. Gayner, C.; Kar, K. K. Recent advances in thermoelectric materials. Prog. Mater. Sci. 2016, 83, 330-82. DOI
15. He, J.; Tritt, T. M. Advances in thermoelectric materials research: looking back and moving forward. Science 2017, 357, eaak9997.
DOI PubMed
16. Yang, L.; Chen, Z. G.; Dargusch, M. S.; Zou, J. High performance thermoelectric materials: progress and their applications. Adv.
Energy. Mater. 2018, 8, 1701797. DOI
17. Hasan, M. N.; Wahid, H.; Nayan, N.; Mohamed, A. M. S. Inorganic thermoelectric materials: a review. Int. J. Energy. Res. 2020, 44,
6170-222. DOI
18. Shi, X. L.; Zou, J.; Chen, Z. G. Advanced thermoelectric design: from materials and structures to devices. Chem. Rev. 2020, 120,
7399-515. DOI PubMed
19. Wei, J.; Yang, L.; Ma, Z.; et al. Review of current high-ZT thermoelectric materials. J. Mater. Sci. 2020, 55, 12642-704. DOI
20. Tan, G.; Zhao, L. D.; Kanatzidis, M. G. Rationally designing high-performance bulk thermoelectric materials. Chem. Rev. 2016, 116,
12123-49. DOI PubMed
21. Soleimani, Z.; Zoras, S.; Ceranic, B.; Shahzad, S.; Cui, Y. A review on recent developments of thermoelectric materials for room-
temperature applications. Sustain. Energy. Technol. Assess. 2020, 37, 100604. DOI
22. Jarman, J.; Khalil, E. E.; Khalaf, E. Energy analyses of thermoelectric renewable energy sources. Open. J. Energy. Effic. 2013, 2, 143-
53. DOI
23. Ryu, B.; Chung, J.; Kumagai, M.; et al. Best thermoelectric efficiency of ever-explored materials. Iscience 2023, 26, 106494. DOI
PubMed PMC
24. Gaultois, M. W.; Sparks, T. D.; Borg, C. K. H.; Seshadri, R.; Bonificio, W. D.; Clarke, D. R. Data-driven review of thermoelectric
materials: performance and resource considerations. Chem. Mater. 2013, 25, 2911-20. DOI
25. Wang, S.; Zuo, G.; Kim, J.; Sirringhaus, H. Progress of conjugated polymers as emerging thermoelectric materials. Prog. Polym. Sci.
2022, 129, 101548. DOI
26. Qin, Y.; Zhang, Q.; Chen, G. Organic borate doped carbon nanotube for enhancement of thermoelectric performance. Carbon 2021,
182, 742-8. DOI
27. Lindorf, M.; Mazzio, K. A.; Pflaum, J.; Nielsch, K.; Brütting, W.; Albrecht, M. Organic-based thermoelectrics. J. Mater. Chem. A.
2020, 8, 7495-507. DOI
28. Zhang, Y.; Wang, W.; Zhang, F.; et al. Soft organic thermoelectric materials: principles, current state of the art and applications. Small
2022, 18, e2104922. DOI
29. Deng, L.; Liu, Y.; Zhang, Y.; Wang, S.; Gao, P. Organic thermoelectric materials: niche harvester of thermal energy. Adv. Funct.
Mater. 2023, 33, 2210770. DOI
30. Jin, H.; Li, J.; Iocozzia, J.; et al. Hybrid organic-inorganic thermoelectric materials and devices. Angew. Chem. Int. Ed. 2019, 58,
15206-26. DOI
31. Selvaratnam, B.; Koodali, R. T. Machine learning in experimental materials chemistry. Catal. Today. 2021, 371, 77-84. DOI
32. Williamson, E. M.; Brutchey, R. L. Using data-driven learning to predict and control the outcomes of inorganic materials synthesis.
Inorg. Chem. 2023, 62, 16251-62. DOI PubMed PMC
33. Baum, F.; Pretto, T.; Köche, A.; Santos, M. J. L. Machine learning tools to predict hot injection syntheses outcomes for II-VI and IV-
VI quantum dots. J. Phys. Chem. C. 2020, 124, 24298-305. DOI
S materials. J. Electron. Mater. 2013, 42, 1604-11.
34. Kyratsi, T.; Ioannou, M. Thermoelectric properties of hot-pressed β-K Bi Se 13-x x
8
2
DOI
35. Kanatzia, A.; Papageorgiou, C.; Lioutas, C.; Kyratsi, T. Design of ball-milling experiments on Bi Te thermoelectric material. J.
2 3
Electron. Mater. 2013, 42, 1652-60. DOI
36. Nuthongkum, P.; Sakulkalavek, A.; Sakdanuphab, R. RSM base study of the effect of argon gas flow rate and annealing temperature
on the [Bi]:[Te] ratio and thermoelectric properties of flexible Bi-Te thin film. J. Electron. Mater. 2017, 46, 2900-7. DOI
37. Khumtong, T.; Sakulkalavek, A.; Sakdanuphab, R. Empirical modelling and optimization of pre-heat temperature and Ar flow rate
using response surface methodology for stoichiometric Sb Te thin films prepared by RF magnetron sputtering. J. Alloys. Compd.
2
3
2017, 715, 65-72. DOI
38. Zhang, Y.; Zhang, Q.; Chen, G. Carbon and carbon composites for thermoelectric applications. Carbon. Energy. 2020, 2, 408-36. DOI
39. Jagadish, P. R.; Khalid, M.; Amin, N.; Li, L. P.; Chan, A. Process optimisation for n-type Bi Te films electrodeposited on flexible
2 3
recycled carbon fibre using response surface methodology. J. Mater. Sci. 2017, 52, 11467-81. DOI
40. Sam, S.; Sreypich, S.; Abad, A.; Gan Lim, L.; Santos, G. N. Fabrication and characterization of PbSnTe crystals for thermoelectric
applications. J. Comput. Innov. Eng. Appl. 2022, 2, 1-2. Available from: https://www.researchgate.net/publication/360112987_
Fabrication_and_Characterization_of_PbSnTe_Crystals_for_Thermoelectric_Applications?enrichId=rgreq-
d b 9 9 2 f 1 3 4 9 b 2 7 a 9 0 2 7 0 2 d 2 4 6 0 5 a 7 1 3 6 2 - X X X & e n r i c h S o u r c e =
Y292ZXJQYWdlOzM2MDExMjk4NztBUzoxMTQ3Njg0MTMxOTk5NzQ5QDE2NTA2NDA2MjgzNzE%3D&el=1_x_2&_esc=

