Page 24 - Read Online
P. 24
Hamawandi et al. Energy Mater. 2025, 5, 500065 https://dx.doi.org/10.20517/energymater.2024.204 Page 19 of 20
pressing and zone melting method. Int. J. Soc. Mater. Eng. Resour. 2002, 10, 130-4. DOI
34. Batili, H.; Hamawandi, B.; Ergül, A. B.; Toprak, M. S. On the electrophoretic deposition of Bi Te nanoparticles through electrolyte
3
2
optimization and substrate design. Colloids. Surf. A. Physicochem. Eng. Asp. 2022, 649, 129537. DOI
35. Batili, H.; Hamawandi, B.; Parsa, P.; et al. Electrophoretic assembly and electronic transport properties of rapidly synthesized Sb Te 3
2
nanoparticles. Appl. Surf. Sci. 2023, 637, 157930. DOI
36. Dong, G.; Zhu, Y.; Chen, L. Microwave-assisted rapid synthesis of Sb Te nanosheets and thermoelectric properties of bulk samples
2 3
prepared by spark plasma sintering. J. Mater. Chem. 2010, 20, 1976. DOI
37. Welter, E.; Chernikov, R.; Herrmann, M.; Nemausat, R. A beamline for bulk sample X-ray absorption spectroscopy at the high
brilliance storage ring PETRA III. AIP. Conf. Proc. 2019, 2054, 040002. DOI
38. Kumar, A.; Misra, D. K.; Bano, S.; Govind, B.; Bhatt, K. A review on sources of uncertainty in thermal conductivity measurement for
thermal transport metrology. In: Yadav S, Chaudhary K, Gahlot A, Arya Y, Dahiya A, Garg N, editors. Recent advances in metrology.
Singapore: Springer Nature; 2023. pp. 137-45. DOI
39. Kuznetsov, G. V.; Kats, M. D. The errors when determining thermal characteristics by the laser flash method due to the thickness of
the sample and the duration of the heating pulse. Meas. Tech. 2012, 55, 454-8. DOI
40. Kalinko, A. xaesa. Available from: https://gitlab.desy.de/aleksandr.kalinko/xaesa [Last accessed on 5 Feb 2025].
41. Kuzmin, A.; Chaboy, J. EXAFS and XANES analysis of oxides at the nanoscale. IUCrJ 2014, 1, 571-89. DOI PubMed PMC
42. Timoshenko, J.; Kuzmin, A.; Purans, J. Reverse Monte Carlo modeling of thermal disorder in crystalline materials from EXAFS
spectra. Comput. Phys. Commun. 2012, 183, 1237-45. DOI
43. Timoshenko, J.; Kuzmin, A.; Purans, J. EXAFS study of hydrogen intercalation into ReO using the evolutionary algorithm. J. Phys.
3
Condens. Matter. 2014, 26, 055401. DOI PubMed
44. Mansour, A. N.; Wong-Ng, W.; Huang, Q.; Tang, W.; Thompson, A.; Sharp, J. Structural characterization of Bi Te and Sb Te as a
2
3
2
3
function of temperature using neutron powder diffraction and extended X-ray absorption fine structure techniques. J. Appl. Phys. 2014,
116, 083513. DOI
45. Ankudinov, A. L.; Ravel, B.; Rehr, J. J.; Conradson, S. D. Real-space multiple-scattering calculation and interpretation of X-ray-
absorption near-edge structure. Phys. Rev. B. 1998, 58, 7565-76. DOI
46. Rehr, J. J.; Albers, R. C. Theoretical approaches to X-ray absorption fine structure. Rev. Mod. Phys. 2000, 72, 621-54. DOI
47. Hedin, L.; Lundqvist, B. I. Explicit local exchange-correlation potentials. J. Phys. C. Solid. State. Phys. 1971, 4, 2064-83. DOI
48. Timoshenko, J.; Kuzmin, A. Wavelet data analysis of EXAFS spectra. Comput. Phys. Commun. 2009, 180, 920-5. DOI
49. Hamawandi, B.; Ballikaya, S.; Batili, H.; et al. Facile solution synthesis, processing and characterization of n- and p-type binary and
ternary Bi-Sb tellurides. Appl. Sci. 2020, 10, 1178. DOI
50. Jonane, I.; Anspoks, A.; Kuzmin, A. Advanced approach to the local structure reconstruction and theory validation on the example of
the W L -edge extended X-ray absorption fine structure of tungsten. Model. Simul. Mater. Sci. Eng. 2018, 26, 025004. DOI
3
51. Jonane, I.; Anspoks, A.; Aquilanti, G.; Kuzmin, A. High-temperature X-ray absorption spectroscopy study of thermochromic copper
molybdate. Acta. Mater. 2019, 179, 26-35. DOI
52. Shannon, R. D. Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides. Acta. Cryst.
A. 1976, 32, 751-67. DOI
53. Eivari, H.; Sohbatzadeh, Z.; Mele, P.; Assadi, M. Low thermal conductivity: fundamentals and theoretical aspects in thermoelectric
applications. Mater. Today. Energy. 2021, 21, 100744. DOI
54. Parashchuk, T.; Knura, R.; Cherniushok, O.; Wojciechowski, K. T. Ultralow lattice thermal conductivity and improved thermoelectric
performance in Cl-doped Bi Te Se alloys. ACS. Appl. Mater. Interfaces. 2022, 14, 33567-79. DOI PubMed PMC
3-x
2
x
55. Zahid, A. H.; Han, Q. A review on the preparation, microstructure, and photocatalytic performance of Bi O in polymorphs. Nanoscale
2
3
2021, 13, 17687-724. DOI
56. Sun, G.; Li, B.; Wang, S.; et al. Selective growth of wide band gap atomically thin Sb O inorganic molecular crystal on WS . Nano.
2
3
2
Res. 2019, 12, 2781-7. DOI
57. Guo, S.; Zhu, Z.; Hu, X.; et al. Ultrathin tellurium dioxide: emerging direct bandgap semiconductor with high-mobility transport
anisotropy. Nanoscale 2018, 10, 8397-403. DOI
58. Zhao, Y.; Dyck, J. S.; Hernandez, B. M.; Burda, C. Enhancing thermoelectric performance of ternary nanocrystals through adjusting
carrier concentration. J. Am. Chem. Soc. 2010, 132, 4982-3. DOI PubMed
59. Scheele, M.; Oeschler, N.; Veremchuk, I.; et al. ZT enhancement in solution-grown Sb Bi Te nanoplatelets. ACS. Nano. 2010, 4,
3
x
2-x
4283-91. DOI
60. Zhang, C.; Peng, Z.; Li, Z.; Yu, L.; Khor, K. A.; Xiong, Q. Controlled growth of bismuth antimony telluride Bi Sb Te nanoplatelets
3
2-x
x
and their bulk thermoelectric nanocomposites. Nano. Energy. 2015, 15, 688-96. DOI
-1 -2
61. Nam, G.; Ha, J. U.; Chung, D. S. Thermoelectric power factor exceeding 50 μW m K from water-borne colloids of polymer
semiconductors. J. Mater. Chem. C. 2020, 8, 13439-44. DOI
62. Yang, H. Q.; Miao, L.; Zhang, M.; et al. Low-temperature, solution-based, scalable synthesis of Sb Te nanoparticles with an enhanced
2 3
power factor. J. Electron. Mater. 2014, 43, 2165-73. DOI
63. Ruamruk, S.; Chayasombat, B.; Singsoog, K.; et al. Power factor of Bi Te and Sb Te enhanced by high density and hardness.
3
2
3
2
Suranaree. J. Sci. Technol. 2023, 30, 030145(1-5). DOI
64. Imamuddin, M.; Dupre, A. Thermoelectric properties of p-type Bi Te -Sb Te -Sb Se alloys and N-type Bi Te -Bi Se alloys in the
3
2
3
2
2
2
3
2
3
3

