Page 107 - Read Online
P. 107
Page 44 of 47 Zhou et al. Soft Sci. 2026, 6, 10
116. Liu, X.; Gao, H.; Ward, J. E.; et al. Power generation from ambient humidity using protein nanowires. Nature 2020, 578, 550-4. DOI
PubMed
117. Ren, G.; Wang, Z.; Zhang, B.; et al. A facile and sustainable hygroelectric generator using whole-cell Geobacter sulfurreducens. Nano.
Energy. 2021, 89, 106361. DOI
118. Ren, G.; Hu, Q.; Ye, J.; Liu, X.; Zhou, S.; He, Z. Hydrovoltaic effect of microbial films enables highly efficient and sustainable
electricity generation from ambient humidity. Chem. Eng. J. 2022, 441, 135921. DOI
119. Ren, G.; Hu, Q.; Ye, J.; Hu, A.; Lü, J.; Zhou, S. All-biobased hydrovoltaic-photovoltaic electricity generators for all-weather energy
harvesting. Research 2022, 2022, 9873203. DOI PubMed PMC
120. Chen, T.; Zhang, D.; Tian, X.; et al. Highly ordered asymmetric cellulose-based honeycomb membrane for moisture-electricity
generation and humidity sensing. Carbohydr. Polym. 2022, 294, 119809. DOI PubMed
121. Wang, C.; Duan, P.; Huang, Y.; et al. Micro-meso-macroporous channels finely tailored for highly efficient moisture energy harvesting.
Nat. Commun. 2025, 16, 6568. DOI PubMed PMC
122. Ying, W.; Huang, Z.; Liu, Z.; et al. High-power hydrogel-based moisture-electric generators. Energy. Environ. Sci. 2025, 18, 9457-67.
DOI
123. Zhu, R.; Feng, Z.; Hu, L.; et al. Synergistic effect of hydrophilic layers for moisture-introduced hybrid power generation. Adv. Mater.
2026, 38, e15133. DOI PubMed
124. Guo, S.; Patel, S.; Wang, J.; et al. Self-powered green energy-harvesting and sensing interfaces based on hygroscopic gel and
water-locking effects. Sci. Adv. 2025, 11, eadw5991. DOI PubMed PMC
125. Huang, Z.; Li, C.; Ying, W.; et al. A hydrogel-based moist-electric generator with superior energy output and environmental adaptability.
Nano. Energy. 2024, 126, 109673. DOI
126. Mo, J.; Wang, X.; Lin, X.; et al. Sulfated cellulose nanofibrils-based hydrogel moist-electric generator for energy harvesting. Chem. Eng.
J. 2024, 491, 152055. DOI
127. Zhang, J.; Zhuang, J.; Lei, L.; Hou, Y. Rapid preparation of a self-adhesive PAA ionic hydrogel using lignin sulfonate–Al composite
3+
systems for flexible moisture-electric generators. J. Mater. Chem. A. 2023, 11, 3546-55. DOI
128. Liang, Y.; Zhao, F.; Cheng, Z.; et al. Self-powered wearable graphene fiber for information expression. Nano. Energy. 2017, 32, 329-35.
DOI
129. Gao, W.; Liu, F.; Zheng, Y.; et al. Long-lasting and high-power-density yarn-based moisture-enabled electric generator for self-powered
electronic textiles. Small 2025, 21, e2409438. DOI PubMed
130. Zhang, R.; Wang, H.; Qu, M.; et al. Sodium alginate based energy harvesting fibers: multiscale structure and moist-electrical properties.
Chem. Eng. J. 2023, 473, 145325. DOI
131. Zhang, R.; Qu, M.; Wang, H.; et al. Sodium alginate based skin-core fibers with profoundly enhanced moisture-electric generation
performance and their multifunctionality. J. Mater. Chem. A. 2023, 11, 3616-24. DOI
132. Zhang, R.; Li, X.; Du, W.; et al. Alginate/multi-wall carbon nanotube fiber-based moist-electric generator with enhanced performance by
constructing radial heterogenous structure. Chem. Eng. J. 2024, 496, 153925. DOI
133. Zhang, R.; Li, J.; Yin, Y.; et al. Sodium alginate/carbon nanotube energy harvesting fibers: axial functional group gradient and
moist-electric performance. J. Mater. Sci. Technol. 2025, 208, 67-77. DOI
134. Zhou, X.; Zhan, Y.; Zhou, J.; et al. Plant‐inspired high‐performance hydrovoltaic electricity generation in Janus aerogel fibers with
gradient nanostructures. Adv. Funct. Mater. 2025, 35, e10747. DOI
135. Sim, H. J.; Gwac, H.; Kim, S. J.; Oh, J.; Choi, C. Soft and elastic hygroelectric fiber for wearable human monitoring textiles. Chem. Eng.
J. 2024, 495, 153486. DOI
136. Han, B. B.; Luo, P.; Xue, Y. B.; et al. Hydrophilic 1T-WS 2 nanosheet arrays toward conductive textiles for high-efficient and continuous
hydroelectric generation and storage. Small 2024, 20, e2308527. DOI PubMed
137. Zhu, R.; Liu, T.; Balilonda, A.; Luo, Y.; Ma, K.; Tao, X. Green, safe, durable, printed fabric hygroelectric generators for wearable
systems. Adv. Mater. 2025, 37, e2502091. DOI PubMed PMC
138. Su, L.; Zhang, C.; Tang, W.; et al. Moist-electric generators using biomass Juncus effusus fibers with 3D microchannels for wearable
applications. Chem. Eng. J. 2024, 499, 156106. DOI
139. He, H.; Zhang, J.; Pan, J.; et al. Moisture-enabled electric generators based on electrospinning silk fibroin/poly(ethylene oxide) film
impregnated with gradient-structured sericin. ACS. Appl. Energy. Mater. 2024, 7, 2980-8. DOI
140. Yang, L.; Zhang, L.; Sun, D. Harvesting electricity from atmospheric moisture by engineering an organic acid gradient in paper. ACS.
Appl. Mater. Interfaces. 2022, 14, 53615-26. DOI PubMed
141. He, W.; Wang, H.; Huang, Y.; et al. Textile-based moisture power generator with dual asymmetric structure and high flexibility for
wearable applications. Nano. Energy. 2022, 95, 107017. DOI

