Extended phase homogeneity and improved out-of-plane charge transfer in Sb and Te co-alloyed n-type BiSe layered compound with extraordinary thermoelectric performance. (April 2023)
- Record Type:
- Journal Article
- Title:
- Extended phase homogeneity and improved out-of-plane charge transfer in Sb and Te co-alloyed n-type BiSe layered compound with extraordinary thermoelectric performance. (April 2023)
- Main Title:
- Extended phase homogeneity and improved out-of-plane charge transfer in Sb and Te co-alloyed n-type BiSe layered compound with extraordinary thermoelectric performance
- Authors:
- Yang, Xinru
Xie, Chenghao
Sun, Jinchang
Xu, Weibin
Li, Songlin
Tang, Xinfeng
Tan, Gangjian - Abstract:
- Abstract: BiSe is a promising n-type layered thermoelectric compound near room temperature. However, its full potential is not realized because of its overall high electron density and inferior interlayer charge transport. In this study, we demonstrate that these drawbacks are well addressed by a feasible Sb and Te co-alloying approach. Sb, preferably substituting Bi atoms in the Bi2 Se3 quintuplet layer, effectively neutralizing excess electrons of BiSe by suppressing positively charged Se vacancies. On the other hand, Te exclusively replaces Se, and promotes interlayer charge transfer by increasing chemical bond covalency. In addition, Te alloying significantly impedes phonon propagation of BiSe by introducing considerable size and mass disorders. More importantly, it is found that co-alloying expands the phase homogeneity of BiSe, which further intensifies the respective functions of Sb and Te alloying. As a consequence, a peak ZT value of 0.6 at 425 K is realized in the sample Bi0.6 Sb0.4 Se0.6 Te0.4, which is 2.5 times that of pristine BiSe. Our work suggests that Sb and Te co-alloyed BiSe is a robust candidate for thermoelectric application near room temperature. Highlights: Sb alloying optimizes the thermoelectric performance of BiSe by neutralizing excess electrons. Te alloying can promote interlayer charge transfer by increased chemical bond covalency and impede phonon propagation. Sb and Te co-alloying extends the phase homogeneity of BiSe. Bi0.6 Sb0.4 Se0.6 Te0.4Abstract: BiSe is a promising n-type layered thermoelectric compound near room temperature. However, its full potential is not realized because of its overall high electron density and inferior interlayer charge transport. In this study, we demonstrate that these drawbacks are well addressed by a feasible Sb and Te co-alloying approach. Sb, preferably substituting Bi atoms in the Bi2 Se3 quintuplet layer, effectively neutralizing excess electrons of BiSe by suppressing positively charged Se vacancies. On the other hand, Te exclusively replaces Se, and promotes interlayer charge transfer by increasing chemical bond covalency. In addition, Te alloying significantly impedes phonon propagation of BiSe by introducing considerable size and mass disorders. More importantly, it is found that co-alloying expands the phase homogeneity of BiSe, which further intensifies the respective functions of Sb and Te alloying. As a consequence, a peak ZT value of 0.6 at 425 K is realized in the sample Bi0.6 Sb0.4 Se0.6 Te0.4, which is 2.5 times that of pristine BiSe. Our work suggests that Sb and Te co-alloyed BiSe is a robust candidate for thermoelectric application near room temperature. Highlights: Sb alloying optimizes the thermoelectric performance of BiSe by neutralizing excess electrons. Te alloying can promote interlayer charge transfer by increased chemical bond covalency and impede phonon propagation. Sb and Te co-alloying extends the phase homogeneity of BiSe. Bi0.6 Sb0.4 Se0.6 Te0.4 compound achieves a peak ZT value of 0.6 at 425 K, which is 2.5 times that of binary BiSe. … (more)
- Is Part Of:
- Materials today physics. Volume 33(2023)
- Journal:
- Materials today physics
- Issue:
- Volume 33(2023)
- Issue Display:
- Volume 33, Issue 2023 (2023)
- Year:
- 2023
- Volume:
- 33
- Issue:
- 2023
- Issue Sort Value:
- 2023-0033-2023-0000
- Page Start:
- Page End:
- Publication Date:
- 2023-04
- Subjects:
- BiSe -- Co-alloying -- Phase homogeneity -- Charge transfer -- Thermoelectric
Materials science -- Periodicals
Physics -- Periodicals
Electronic journals
530.41 - Journal URLs:
- https://www.journals.elsevier.com/materials-today-physics ↗
http://www.sciencedirect.com/ ↗ - DOI:
- 10.1016/j.mtphys.2023.101047 ↗
- Languages:
- English
- ISSNs:
- 2542-5293
- Deposit Type:
- Legaldeposit
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