Page 67 - Read Online
P. 67
Ao et al. Soft Sci 2024;4:3 https://dx.doi.org/10.20517/ss.2023.34 Page 9 of 9
2019;31:1807071. DOI PubMed
16. 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
17. Wu Z, Zhang S, Liu Z, Mu E, Hu Z. Thermoelectric converter: strategies from materials to device application. Nano Energy
2022;91:106692. DOI
18. Wu L, Li H, Chai H, Xu Q, Chen Y, Chen L. Anion-dependent molecular doping and charge transport in ferric salt-doped P3HT for
thermoelectric application. ACS Appl Electron Mater 2021;3:1252-9. DOI
19. Li H, Liu Y, Li P, Liu S, Du F, He C. Enhanced thermoelectric performance of carbon nanotubes/polyaniline composites by multiple
interface engineering. ACS Appl Mater Interfaces 2021;13:6650-8. DOI PubMed
20. Fan Z, Li P, Du D, Ouyang J. Significantly enhanced thermoelectric properties of PEDOT:PSS films through sequential post-
treatments with common acids and bases. Adv Energy Mater 2017;7:1602116. DOI
21. Gao Q, Wang W, Lu Y, et al. High power factor Ag/Ag Se composite films for flexible thermoelectric generators. ACS Appl Mater
2
Interfaces 2021;13:14327-33. DOI PubMed
22. Rongione NA, Li M, Wu H, et al. High-performance solution-processable flexible snse nanosheet films for lower grade waste heat
recovery. Adv Elect Mater 2019;5:1800774. DOI
23. Zheng ZH, Zhang DL, Jabar B, et al. Realizing high thermoelectric performance in highly (0l0)-textured flexible Cu Se thin film for
2
wearable energy harvesting. Mater Today Phys 2022;24:100659. DOI
24. Ao DW, Liu WD, Chen YX, et al. Novel thermal diffusion temperature engineering leading to high thermoelectric performance in
Bi Te -based flexible thin-films. Adv Sci 2022;9:2103547. DOI PubMed PMC
2
3
25. Wei M, Shi XL, Zheng ZH, et al. Directional thermal diffusion realizing inorganic Sb Te /Te hybrid thin films with high
2
3
thermoelectric performance and flexibility. Adv Funct Mater 2022;32:2207903. DOI
26. Liu H, Li D, Ma C, et al. Van der Waals epitaxial growth of vertically stacked Sb Te /MoS p-n heterojunctions for high performance
2 3 2
optoelectronics. Nano Energy 2019;59:66-74. DOI
27. Ma F, Ao D, Liu X, Liu WD. Ti-doping inducing high-performance flexible p-type Bi Sb Te -based thin film. Ceram Int
0.5 1.5 3
2023;49:18584-91. DOI
28. Shen S, Zhu W, Deng Y, Zhao H, Peng Y, Wang C. Enhancing thermoelectric properties of Sb Te flexible thin film through
2 3
microstructure control and crystal preferential orientation engineering. Appl Surf Sci 2017;414:197-204. DOI
29. Vieira EMF, Figueira J, Pires AL, et al. Enhanced thermoelectric properties of Sb Te and Bi Te films for flexible thermal sensors. J
3
2
3
2
Alloys Compd 2019;774:1102-16. DOI
30. Shang H, Li T, Luo D, et al. High-performance Ag-modified Bi Sb Te films for the flexible thermoelectric generator. ACS Appl
0.5 1.5 3
Mater Interfaces 2020;12:7358-65. DOI PubMed
31. Chang PS, Liao CN. Screen-printed flexible thermoelectric generator with directional heat collection design. J Alloys Compd
2020;836:155471. DOI
32. Zheng ZH, Shi XL, Ao DW, et al. Harvesting waste heat with flexible Bi Te thermoelectric thin film. Nat Sustain 2023;6:180-91.
2 3
DOI
33. Liu WD, Chen ZG, Zou J. Eco-friendly higher manganese silicide thermoelectric materials: progress and future challenges. Adv
Energy Mater 2018;8:1800056. DOI
34. Shi J, Chen X, Wang W, Chen H. A new rapid synthesis of thermoelectric Sb Te ingots using selective laser melting 3D printing.
2
3
Mater Sci Semicond Process 2021;123:105551. DOI
35. Yang Q, Yang S, Qiu P, et al. Flexible thermoelectrics based on ductile semiconductors. Science 2022;377:854-8. DOI PubMed
36. Hollar C, Lin Z, Kongara M, et al. Flexible thermoelectrics: high-performance flexible bismuth telluride thin film from solution processed
colloidal nanoplates (Adv. Mater. Technol. 11/2020). Adv Mater Technol 2020;5:2000600. DOI

