Page 109 - Read Online
P. 109
Page 16 of 17 Kumar et al. Energy Mater. 2025, 5, 500109 https://dx.doi.org/10.20517/energymater.2025.22
temperature liquid phase sintering. Mater. Today. Energy. 2024, 46, 101717. DOI
11. Deng, R.; Su, X.; Zheng, Z.; et al. Thermal conductivity in Bi Sb Te and the role of dense dislocation arrays at grain boundaries.
3+x
0.5
1.5
Sci. Adv. 2018, 4, eaar5606. DOI
12. Cho, H.; Kim, J. H.; Back, S. Y.; Ahn, K.; Rhyee, J.; Park, S. Enhancement of thermoelectric properties in CuI-doped Bi Te Se by
2
0.3
2.7
hot-deformation. J. Alloys. Compd. 2018, 731, 531-6. DOI
13. Haruna, A. Y.; Luo, Y.; Li, W.; et al. High thermoelectric performance in multiscale Ag SnSe included n-type bismuth telluride for
8 6
cooling application. Mater. Today. Energy. 2023, 35, 101332. DOI
14. Luo, K.; Chen, H.; Hu, W.; et al. Tailoring interfacial states for improved n-type bismuth telluride thermoelectrics. Nano. Energy.
2024, 128, 109845. DOI
15. Beekman, M.; Morelli, D. T.; Nolas, G. S. Better thermoelectrics through glass-like crystals. Nat. Mater. 2015, 14, 1182-5. DOI
PubMed
16. Wang, X.; Guo, W.; Fu, Y. High-entropy alloys: emerging materials for advanced functional applications. J. Mater. Chem. A. 2021, 9,
663-701. DOI
17. Ghosh, S.; Raman, L.; Sridar, S.; Li, W. High-entropy engineering in thermoelectric materials: a review. Crystals 2024, 14, 432. DOI
18. Ye, Y.; Wang, Q.; Lu, J.; Liu, C.; Yang, Y. High-entropy alloy: challenges and prospects. Mater. Today. 2016, 19, 349-62. DOI
19. George, E. P.; Raabe, D.; Ritchie, R. O. High-entropy alloys. Nat. Rev. Mater. 2019, 4, 515-34. DOI
20. Yao, Y.; Dong, Q.; Brozena, A.; et al. High-entropy nanoparticles: synthesis-structure-property relationships and data-driven
discovery. Science 2022, 376, eabn3103. DOI
21. Jiang, B.; Yu, Y.; Cui, J.; et al. High-entropy-stabilized chalcogenides with high thermoelectric performance. Science 2021, 371, 830-
4. DOI
22. Jiang, B.; Yu, Y.; Chen, H.; et al. Entropy engineering promotes thermoelectric performance in p-type chalcogenides. Nat. Commun.
2021, 12, 3234. DOI PubMed PMC
23. Jiang, B.; Wang, W.; Liu, S.; et al. High figure-of-merit and power generation in high-entropy GeTe-based thermoelectrics. Science
2022, 377, 208-13. DOI
24. Kim, J. H.; Hidayati, R.; Jung, S.; et al. Enhancement of critical current density and strong vortex pinning in high entropy alloy
superconductor Ta Nb Hf Zr Ti synthesized by spark plasma sintering. Acta. Materialia. 2022, 232, 117971. DOI
1/6 2/6 1/6 1/6 1/6
25. Martínez, E.; Mikheenko, P.; Martínez-lópez, M.; Millán, A.; Bevan, A.; Abell, J. S. Flux pinning force in bulk MgB with variable
2
grain size. Phys. Rev. B. 2007, 75. DOI
26. Abou, E. H. A.; Labrag, A.; Taoufik, A.; et al. Magnetic penetration depth and coherence length in a single-crystal YBa Cu O .
2 3 7-δ
Physica. Status. Solidi. (b). 2021, 258, 2100292. DOI
27. Rowell, J. M. The widely variable resistivity of MgB samples. Supercond. Sci. Technol. 2003, 16, R17-27. DOI
2
28. Jiang, J.; Senkowicz, B. J.; Larbalestier, D. C.; Hellstrom, E. E. Influence of boron powder purification on the connectivity of bulk
MgB . Supercond. Sci. Technol. 2006, 19, L33-6. DOI
2
29. Muhammad, Y.; Rahim, M.; Hussain, N.; Iqbal, Z.; Naseem, A. Enhanced transport properties of (Ag) /CuTl-1223 nano-composites
x
with the application of high pelletization pressure. Appl. Phys. A. 2024, 130, 7801. DOI
30. Matthews, G. A. B.; Mousavi, T.; Santra, S.; Grovenor, C. R. M.; Grant, P. S.; Speller, S. Improving the connectivity of MgB bulk
2
superconductors by a novel liquid phase sintering process. Supercond. Sci. Technol. 2022, 35, 065005. DOI
31. Xu, Z.; Jiang, Z.; Kuai, C.; et al. Charge distribution guided by grain crystallographic orientations in polycrystalline battery materials.
Nat. Commun. 2020, 11, 83. DOI PubMed PMC
32. Wang, Q.; Zhao, C.; Hu, X.; et al. Grain-boundary-rich interphases for rechargeable batteries. J. Am. Chem. Soc. 2024, 146, 31778-87.
DOI PubMed PMC
33. Son, D.; Lee, J.; Choi, Y. J.; et al. Self-formed grain boundary healing layer for highly efficient CH NH PbI perovskite solar cells.
3 3 3
Nat. Energy. 2016, 1, 16081. DOI
34. Sherkar, T. S.; Momblona, C.; Gil-Escrig, L.; et al. Recombination in perovskite solar cells: significance of grain boundaries, interface
traps, and defect ions. ACS. Energy. Lett. 2017, 2, 1214-22. DOI PubMed PMC
35. Choi, H. H.; Paterson, A. F.; Fusella, M. A.; et al. Hall effect in polycrystalline organic semiconductors: the effect of grain boundaries.
Adv. Funct. Mater. 2020, 30, 1903617. DOI
36. Sarkar, P.; Muhammed, A. A. V.; Ghorai, G.; et al. On the grain boundary charge transport in p-type polycrystalline nanoribbon
transistors. Nanoscale 2024, 16, 16611-21. DOI
37. Wei, Z.; Wang, C.; Zhang, J.; et al. Precise regulation of carrier concentration in thermoelectric BiSbTe alloys via magnetic doping.
ACS. Appl. Mater. Interfaces. 2020, 12, 20653-63. DOI
38. Kim, J. H.; Cho, H.; Back, S. Y.; Yun, J. H.; Lee, H. S.; Rhyee, J. Lattice distortion and anisotropic thermoelectric properties in hot-
deformed CuI-doped Bi Te Se . J. Alloys. . Compd. 2020, 815, 152649. DOI
2 2·7 0.3
39. Kim, J. H.; Back, S. Y.; Yun, J. H.; Lee, H. S.; Rhyee, J. S. Scattering mechanisms and suppression of bipolar diffusion effect in Bi Te
2
Se I compounds. Materials 2021, 14, 1564. DOI PubMed PMC
2.85 0.15 x
40. Cao, T.; Shi, X.; Li, M.; et al. Advances in bismuth-telluride-based thermoelectric devices: progress and challenges. eScience 2023, 3,
100122. DOI
41. Hu, X.; Xiang, Q.; Kong, D.; et al. The effect of Ni/Sn doping on the thermoelectric properties of BiSbTe polycrystalline bulks. J.
Solid. State. Chem. 2019, 277, 175-81. DOI

