Page 93 - Read Online
P. 93
Page 28 of 28 Choi et al. Energy Mater. 2025, 5, 500106 https://dx.doi.org/10.20517/energymater.2025.50
70. Muddasar, M.; Menéndez, N.; Quero, Á.; et al. Highly-efficient sustainable ionic thermoelectric materials using lignin-derived
hydrogels. Adv. Compos. Hybrid. Mater. 2024, 7, 863. DOI
71. Zhou, Y.; Yang, L.; Xu, J.; Wei, Z.; Ma, X.; Yuan, B. A bio-based alginate hydrogel with considerable thermoelectric performance,
mechanical strength and flame retardancy for ultra-fast and sustained early fire-alarm system. Int. J. Biol. Macromol. 2025, 300,
140324. DOI
72. Zhou, Z.; Wan, Y.; Zi, J.; et al. Flexible hydrogel with a coupling enhanced thermoelectric effect for low-grade heat harvest. Mater.
Today. Sustain. 2023, 21, 100293. DOI
73. Ajdary, R.; Tardy, B. L.; Mattos, B. D.; Bai, L.; Rojas, O. J. Plant nanomaterials and inspiration from nature: water interactions and
hierarchically structured hydrogels. Adv. Mater. 2021, 33, e2001085. DOI PubMed PMC
74. Hu, Y.; Chen, M.; Qin, C.; Zhang, J.; Lu, A. Cellulose ionic conductor with tunable Seebeck coefficient for low-grade heat harvesting.
Carbohydr. Polym. 2022, 292, 119650. DOI
75. Liu, K. Y.; Hu, Y. P.; Yu, W.; Meng, C. Z.; Guo, S. J.; Li, G. X. Cellulose nanofibrils enhanced thermoelectric hydrogel with high
negative Seebeck coefficient. Mater. Lett. 2024, 372, 137038. DOI
76. Cheng, X.; Hu, Y.; Chen, P.; Qi, H.; Lu, A. Regulation of thermal migration channel in cellulose hydrogel to enhance thermopower.
Chem. Eng. J. 2024, 498, 155161. DOI
77. Chen, L.; Rong, X.; Liu, Z.; et al. Negative thermopower anisotropic ionic thermoelectric hydrogels based on synergistic coordination
and hydration for low-grade heat harvesting. Chem. Eng. J. 2024, 481, 148797. DOI
78. Liang, X.; Zhong, H. J.; Ding, H.; et al. Polyvinyl alcohol (pva)-based hydrogels: recent progress in fabrication, properties, and
multifunctional applications. Polymers 2024, 16, 2755. DOI PubMed PMC
79. Chen, Q.; Chen, B.; Xiao, S.; et al. Giant thermopower of hydrogen ion enhanced by a strong hydrogen bond system. ACS. Appl.
Mater. Interfaces. 2022, 14, 19304-14. DOI
80. Horike, S.; Wei, Q.; Kirihara, K.; et al. Outstanding electrode-dependent Seebeck coefficients in ionic hydrogels for thermally
chargeable supercapacitor near room temperature. ACS. Appl. Mater. Interfaces. 2020, 12, 43674-83. DOI
81. Hu, Q.; Li, H.; Chen, X.; et al. Strong tough ionic organohydrogels with negative-thermopower via the synergy of coordination
interaction and hofmeister effect. Adv. Funct. Mater. 2024, 34, 2406968. DOI
82. Sennakesavan, G.; Mostakhdemin, M.; Dkhar, L.; Seyfoddin, A.; Fatihhi, S. Acrylic acid/acrylamide based hydrogels and its properties
- a review. Polym. Degrad. Stab. 2020, 180, 109308. DOI
83. Jiang, C.; Lai, X.; Wu, Z.; et al. A high-thermopower ionic hydrogel for intelligent fire protection. J. Mater. Chem. A. 2022, 10, 21368-
78. DOI
84. Sha, W.; Wang, Y.; Xiao, M.; et al. Conductive ionic thermoelectric hydrogel with negative Seebeck coefficient, self-healing and
highly sensitive to temperature for photothermoelectric conversion and non-contact sensing device. Chem. Eng. J. 2024, 501, 157823.
DOI
85. Chen, J.; Zhang, L.; Tu, Y.; et al. Wearable self-powered human motion sensors based on highly stretchable quasi-solid state hydrogel.
Nano. Energy. 2021, 88, 106272. DOI
86. Liu, C.; Li, Q.; Wang, S.; Liu, W.; Fang, N. X.; Feng, S. Ion regulation in double-network hydrogel module with ultrahigh
thermopower for low-grade heat harvesting. Nano. Energy. 2022, 92, 106738. DOI
87. Zhao, D.; Martinelli, A.; Willfahrt, A.; et al. Polymer gels with tunable ionic Seebeck coefficient for ultra-sensitive printed
thermopiles. Nat. Commun. 2019, 10, 1093. DOI PubMed PMC
88. Fu, M.; Sun, Z.; Liu, X.; et al. Highly stretchable, resilient, adhesive, and self-healing ionic hydrogels for thermoelectric application.
Adv. Funct. Mater. 2023, 33, 2306086. DOI
89. Fu, M.; Yuan, Y.; Liu, X.; et al. A thermosensitive ionic hydrogel for thermotropic smart windows with integrated thermoelectric
energy harvesting capability. Adv. Funct. Mater. 2025, 35, 2412081. DOI
90. Chen, J.; Shi, C.; Wu, L.; et al. Environmentally tolerant ionic hydrogel with high power density for low-grade heat harvesting. ACS.
Appl. Mater. Interfaces. 2022, 14, 34714-21. DOI
91. Wu, H.; Chen, G.; Xie, S.; Xiang, K.; Fan, Y.; Guo, Z. Waste-heat harvesting using a thermoelectric generator coupled with a
hygroscopic hydrogel for use in the energy industry. J. Mater. Chem. C. 2025, 13, 1801-11. DOI
92. Wang, H.; Hou, Z.; Wang, Y.; et al. 3D hierarchical porous hydrogel polymer electrolytes for flexible quasi-solid-state
supercapacitors. Chem. Eng. J. 2025, 510, 161766. DOI

