Page 64 - Read Online
P. 64
Page 16 of 17 Lekbir et al. Energy Mater. 2025, 5, 500101 https://dx.doi.org/10.20517/energymater.2025.46
15. Zhang, M.; Shi, X.; Liu, S.; et al. Compositing effect leads to extraordinary performance in GeSe-based thermoelectrics. Adv. Funct.
Mater. 2025, 2500898. DOI
16. Hu, B.; Shi, X. L.; Cao, T.; et al. Realizing high performance in flexible Mg Sb Bi thin-film thermoelectrics. Adv. Sci. 2025,
x
2-x
3
e2502683. DOI
17. Chan, Z.; Lim, J. H. Life cycle analysis of thermoelectric generator efficiency for waste heat recovery. AIP. Conf. Proc. 2020, 2233,
020003. DOI
18. Lan, Y.; Lu, J.; Wang, S. Study of the geometry and structure of a thermoelectric leg with variable material properties and side heat
dissipation based on thermodynamic, economic, and environmental analysis. Energy 2023, 282, 128895. DOI
19. Ibn-Mohammed, T.; Koh, S.; Mustapha, K.; et al. Techno-environmental analysis of material substitution in thermoelectric modules:
non-oxide (bismuth telluride alloys) vs. oxide-based (lanthanum-doped strontium titanate and calcium cobaltite) materials. Energy.
Convers. Manag. X. 2023, 19, 100395. DOI
20. Soleimani, Z.; Zoras, S.; Ceranic, B.; Shahzad, S.; Cui, Y. The cradle to gate life-cycle assessment of thermoelectric materials: A
comparison of inorganic, organic and hybrid types. Sustain. Energy. Technol. Assess. 2021, 44, 101073. DOI
21. Dhawan, R.; Madusanka, P.; Hu, G.; et al. Si Ge microelectronic thermoelectric generators with high power and voltage densities.
0.97 0.03
Nat. Commun. 2020, 11, 4362. DOI PubMed PMC
22. Pavlovskaya, N. T.; Litovchenko, P. G.; Ugrin, Y. O.; Pavlovskyy, Y. V.; Ostrovskii, I. P.; Rogacki, K. Magnetoresistance of proton
irradiated Si Ge whiskers. Mod. Electron. Mater. 2016, 2, 85-8. DOI
0.97 0.03
23. Parashchuk, T.; Kostyuk, O.; Nykyruy, L.; Dashevsky, Z. High thermoelectric performance of p-type Bi Sb Te films on flexible
0.5 1.5 3
substrate. Mater. Chem. Phys. 2020, 253, 123427. DOI
24. Lemine, A. S.; El-Makaty, F. M.; Al-Ghanim, H. A.; Youssef, K. M. Experimental and modeling analysis of p-type Bi Sb Te and
0.4 1.6 3
graphene nanocomposites. J. Mater. Res. Technol. 2022, 16, 1702-12. DOI
25. Amin, A.; Huang, R.; Newbrook, D.; et al. Screen-printed bismuth telluride nanostructured composites for flexible thermoelectric
applications. J. Phys. Energy. 2022, 4, 024003. DOI
26. Liang, J.; Shi, X.; Peng, Y.; et al. Synergistic effect of band and nanostructure engineering on the boosted thermoelectric performance
of n-type Mg (Sb, Bi) Zintls. Adv. Energy. Mater. 2022, 12, 2201086. DOI
3+δ 2
27. Imasato, K.; Fu, C.; Pan, Y.; et al. Metallic n-type Mg Sb single crystals demonstrate the absence of ionized impurity scattering and
3 2
enhanced thermoelectric performance. Adv. Mater. 2020, 32, e1908218. DOI
28. Varghese, T.; Dun, C.; Kempf, N.; et al. Flexible thermoelectric devices of ultrahigh power factor by scalable printing and interface
engineering. Adv. Funct. Mater. 2020, 30, 1905796. DOI
29. Pandit, A.; Haleoot, R.; Hamad, B. Structural, electronic and thermoelectric properties of Pb Sn Te alloys. J. Electron. Mater. 2020,
1-x x
49, 586-92. DOI
30. Kungumadevi, L.; Sathyamoorthy, R. Structural, electrical, and optical properties of PbTe thin films prepared by simple flash
evaporation method. Adv. Condens. Matter. Phys. 2012, 2012, 1-5. DOI
31. Norimasa, O.; Chiba, T.; Hase, M.; Komori, T.; Takashiri, M. Improvement of thermoelectric properties of flexible Bi Te thin films in
2
3
bent states during sputtering deposition and post-thermal annealing. J. Alloys. Compd. 2022, 898, 162889. DOI
32. Park, D.; Park, S.; Jeong, K.; Jeong, H. S.; Song, J. Y.; Cho, M. H. Thermal and electrical conduction of single-crystal Bi Te
2 3
nanostructures grown using a one step process. Sci. Rep. 2016, 6, 19132. DOI PubMed PMC
33. Sun, Z.; Cheng, K.; Lin, S.; et al. Stoichiometric effect of Sb Te thin film on thermoelectric property. ACS. Appl. Energy. Mater.
2 3
2022, 5, 7026-33. DOI
34. Endo, R.; Maeda, S.; Jinnai, Y.; et al. Electric resistivity measurements of Sb Te and Ge Sb Te melts using four-terminal method.
5
2
2
3
2
Jpn. J. Appl. Phys. 2010, 49, 065802. DOI
35. Liu, Z.; Zhu, J.; Tong, X.; Niu, S.; Zhao, W. A review of CoSb -based skutterudite thermoelectric materials. J. Adv. Ceram. 2020, 9,
3
647-73. DOI
36. Bourgès, C.; Zhang, W.; Raut, K. K.; et al. Investigation of Mn single and Co-doping in thermoelectric CoSb -skutterudite: a way
3
toward a beneficial composite effect. ACS. Appl. Energy. Mater. 2023, 6, 9646-56. DOI
37. Lin, J.; Ma, L.; Liu, Q.; et al. Continuous phase transition in thermoelectric Zn Sb . Mater. Today. Energy. 2021, 21, 100787. DOI
4 3
38. Zou, T.; Qin, X.; Zhang, Y.; et al. Enhanced thermoelectric performance of β-Zn Sb based nanocomposites through combined effects
4 3
of density of states resonance and carrier energy filtering. Sci. Rep. 2015, 5, 17803. DOI PubMed PMC
39. Fatima, K.; Noor, H.; Ali, A.; Monakhov, E.; Asghar, M. Annealing effect on seebeck coefficient of SiGe thin films deposited on
quartz substrate. Coatings 2021, 11, 1435. DOI
40. Fan, Z.; Liang, J.; Chen, J.; et al. Realizing high thermoelectric performance for p-type SiGe in medium temperature region via TaC
compositing. J. Materiomics. 2023, 9, 984-91. DOI
41. Yamanaka, S.; Kosuga, A.; Kurosaki, K. Thermoelectric properties of Tl BiTe . J. Alloys. Compd. 2003, 352, 275-8. DOI
9 6
42. Lekbir, A.; Meddad, M. A. E.; Benhadouga, S.; Khenfer, R. Higher-efficiency for combined photovoltaic-thermoelectric solar power
generation. Int. J. Green. Energy. 2019, 16, 371-7. DOI
43. Vovchenko, L.; Matzui, L.; Zhuravkov, A.; Samchuk, A. Electrical resistivity of compacted TEG and TEG-Fe under compression. J.
Phys. Chem. Solids. 2006, 67, 1168-72. DOI
44. Hammond, G. P.; Jones, C. I. Embodied energy and carbon in construction materials. Proc. Inst. Civ. Eng. Energy. 2008, 161, 87-98.
DOI

