Page 92 - Read Online
P. 92
Choi et al. Energy Mater. 2025, 5, 500106 https://dx.doi.org/10.20517/energymater.2025.50 Page 27 of 28
38. Dai, Y.; Wang, H.; Qi, K.; et al. Electrode-dependent thermoelectric effect in ionic hydrogel fiber for self-powered sensing and low-
grade heat harvesting. Chem. Eng. J. 2024, 497, 154970. DOI
39. Zhang, Y.; Dai, Y.; Xia, F.; Zhang, X. Gelatin/polyacrylamide ionic conductive hydrogel with skin temperature-triggered adhesion for
human motion sensing and body heat harvesting. Nano. Energy. 2022, 104, 107977. DOI
40. Han, Y.; Wei, H.; Du, Y.; et al. Ultrasensitive flexible thermal sensor arrays based on high-thermopower ionic thermoelectric hydrogel.
Adv. Sci. 2023, 10, e2302685. DOI PubMed PMC
41. Lee, C. Y.; Hong, S. H.; Liu, C. L. Recent progress in polymer gel-based ionic thermoelectric devices: materials, methods, and
perspectives. Macromol. Rapid. Commun. 2025, 46, e2400837. DOI PubMed
42. Son, C. Y.; Wang, Z. G. Ion transport in small-molecule and polymer electrolytes. J. Chem. Phys. 2020, 153, 100903. DOI PubMed
43. Wu, Z.; Wang, B.; Li, J.; et al. Advanced bacterial cellulose ionic conductors with gigantic thermopower for low-grade heat
harvesting. Nano. Lett. 2022, 22, 8152-60. DOI
44. Madduma-Bandarage, U. S. K.; Madihally, S. V. Synthetic hydrogels: synthesis, novel trends, and applications. J. Appl. Polym. Sci.
2021, 138, 50376. DOI
45. Hsiao, Y. C.; Lee, L. C.; Lin, Y. T.; et al. Stretchable polyvinyl alcohol and sodium alginate double network ionic hydrogels for low-
grade heat harvesting with ultrahigh thermopower. Mater. Today. Energy. 2023, 37, 101383. DOI
46. Yossef, M.; Baniasadi, H.; Kallio, T.; Perry, M.; Puttonen, J. Ionic thermoelectricity of salt-free PVA-hydrogel. Appl. Mater. Today.
2024, 38, 102240. DOI
47. Yang, X.; Tian, Y.; Wu, B.; et al. High-performance ionic thermoelectric supercapacitor for integrated energy conversion-storage.
Energy. Environ. Mater. 2022, 5, 954-61. DOI
48. Wang, Y.; Liu, X.; Li, S.; et al. Transparent, healable elastomers with high mechanical strength and elasticity derived from hydrogen-
bonded polymer complexes. ACS. Appl. Mater. Interfaces. 2017, 9, 29120-9. DOI
49. Li, Q.; Han, C. G.; Wang, S.; et al. Anionic entanglement-induced giant thermopower in ionic thermoelectric material Gelatin-CF SO
3 3
K-CH SO K. eScience 2023, 3, 100169. DOI
3 3
50. Chen, B.; Feng, J.; Chen, Q.; et al. Specific behavior of transition metal chloride complexes for achieving giant ionic thermoelectric
properties. NPJ. Flex. Electron. 2022, 6, 213. DOI
51. Sui, X.; Guo, H.; Cai, C.; et al. Ionic conductive hydrogels with long-lasting antifreezing, water retention and self-regeneration
abilities. Chem. Eng. J. 2021, 419, 129478. DOI
52. Sun, S.; Li, M.; Shi, X.; Chen, Z. Advances in ionic thermoelectrics: from materials to devices. Adv. Energy. Mater. 2023, 13,
2203692. DOI
53. Kishore, R. A.; Nozariasbmarz, A.; Poudel, B.; Sanghadasa, M.; Priya, S. Ultra-high performance wearable thermoelectric coolers with
less materials. Nat. Commun. 2019, 10, 1765. DOI PubMed PMC
54. Wang, H.; Zhao, D.; Khan, Z. U.; et al. Ionic thermoelectric figure of merit for charging of supercapacitors. Adv. Electron. Mater.
2017, 3, 1700013. DOI
55. Lan, J. L.; Ma, W.; Deng, C.; Ren, G. K.; Lin, Y. H.; Yang, X. High thermoelectric performance of Bi K CuSeO prepared by
1-x x
combustion synthesis. J. Mater. Sci. 2017, 52, 11569-79. DOI
56. Massetti, M.; Jiao, F.; Ferguson, A. J.; et al. Unconventional thermoelectric materials for energy harvesting and sensing applications.
Chem. Rev. 2021, 121, 12465-547. DOI
57. Yang, L.; Chen, Z.; Dargusch, M. S.; Zou, J. High performance thermoelectric materials: progress and their applications. Adv. Energy.
Mater. 2018, 8, 1701797. DOI
58. de Groot, S. R.; Mazur, P.; Choi, S. Non-equilibrium thermodynamics. Phys. Today. 1963, 16, 70-1. DOI
59. Onsager, L. Reciprocal relations in irreversible processes. I. Phys. Rev. 1931, 37, 405. DOI
60. Onsager, L. Reciprocal relations in irreversible processes. II. Phys. Rev. 1931, 38, 2265. DOI
61. Liu, J.; Zeng, W.; Tao, X. Gigantic effect due to phase transition on thermoelectric properties of ionic sol-gel materials. Adv. Funct.
Mater. 2022, 32, 2208286. DOI
62. Eastman, E. D. Thermodynamics of non-isothermal systems. J. Am. Chem. Soc. 1926, 48, 1482-93. DOI
63. Paulsen, B. D.; Tybrandt, K.; Stavrinidou, E.; Rivnay, J. Organic mixed ionic-electronic conductors. Nat. Mater. 2020, 19, 13-26. DOI
PubMed
64. Jia, S.; Qian, W.; Yu, P.; et al. Realization of hydrogel electrolytes with high thermoelectric properties: utilization of the hofmeister
effect. ACS. Appl. Mater. Interfaces. 2024, 16, 69519-28. DOI
65. Cheng, H.; Wang, Z.; Guo, Z.; et al. Cellulose-based thermoelectric composites: a review on mechanism, strategies and applications.
Int. J. Biol. Macromol. 2024, 275, 132908. DOI
2+
3+
66. Liu, Y.; Zhang, Q.; Odunmbaku, G. O.; et al. Solvent effect on the Seebeck coefficient of Fe /Fe hydrogel thermogalvanic cells. J.
Mater. Chem. A. 2022, 10, 19690-8. DOI
67. Zhou, Y.; Dong, Z.; He, Y.; et al. Multi-ionic hydrogel with outstanding heat-to-electrical performance for low-grade heat harvesting.
Chem. Asian. J. 2022, 17, e202200850. DOI
-1
68. He, Y.; Zhang, Q.; Cheng, H.; et al. Role of ions in hydrogels with an ionic Seebeck coefficient of 52.9 MV K . J. Phys. Chem. Lett.
2022, 13, 4621-7. DOI
69. Cheng, H.; Ouyang, J. Soret effect of ionic liquid gels for thermoelectric conversion. J. Phys. Chem. Lett. 2022, 13, 10830-42. DOI
PubMed

