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Zhou et al. Soft Sci. 2026, 6, 10                                                 Page 43 of 47





               89.  Sun, Z.; Wen, X.; Kim, J.; et al. Moisture‐driven hydrogel power source with asymmetric ion adsorption for flexible electronics. Adv.
                  Funct. Mater. 2026, 36, e18814. DOI
               90.  Xiao, R.; Zhou, X.; Yang, T.; et al. Biomimetic gradient aerogel fibers for sustainable energy harvesting from human sweat via the
                  hydrovoltaic effect. Nano. Energy. 2025, 136, 110759. DOI
               91.  Xing, R.; Liu, Y.; Yan, J.; Wang, R.; Zhuang, X.; Yang, G. High-performance, breathable and flame-retardant moist-electric generator
                  based on asymmetrical nanofiber membrane assembly. J. Colloid. Interface. Sci. 2024, 671, 205-15. DOI PubMed
               92.  Chen, P.; He, G.; He, B.; et al. Long-term and high electric output moist-electric generator driven by all electrospun nanofiber-based
                  Janus architecture. J. Mater. Sci. Technol. 2025, 225, 31-9. DOI
               93.  Ni, K.; Ren, Q.; Zhang, X.; Liu, R. A trilayer nanofluidic ionic diode for high-performance moisture-enabled energy harvesting and ionic
                  logic operations. Adv. Mater. 2026, 38, e13405. DOI PubMed
               94.  Zhao, F.; Cheng, H.; Zhang, Z.; Jiang, L.; Qu, L. Direct power generation from a graphene oxide film under moisture. Adv. Mater. 2015,
                  27, 4351-7. DOI PubMed
               95.  Cheng, H.; Huang, Y.; Zhao, F.; et al. Spontaneous power source in ambient air of a well-directionally reduced graphene oxide bulk.
                  Energy. Environ. Sci. 2018, 11, 2839-45. DOI
               96.  Gao, Y.; Cai, X.; Zhao, Y.; et al. Scalable preparation of flexible heterogeneous graphene oxide structures for high-performance wet
                  power generation. J. Mater. Chem. A. 2024, 12, 12216-24. DOI
               97.  Tang, X.; Jiang, B.; Zhu, Q.; et al. A novel wood-based multifunctional composites incorporating with piezoelectric and moist-electric
                  performance. Nano. Energy. 2024, 130, 110159. DOI
               98.  Cao, Y. M.; Su, Y.; Zheng, M.; et al. Vertical phase-engineering MoS 2  nanosheet-enhanced textiles for efficient moisture-based energy
                  generation. ACS. Nano. 2024, 18, 492-505. DOI PubMed
               99.  He, D.; Yang, Y.; Zhou, Y.; et al. Electricity generation from phase-engineered flexible MoS 2  nanosheets under moisture. Nano. Energy.
                  2021, 81, 105630. DOI
               100. Cai, C.; Chen, Y.; Cheng, F.; Wei, Z.; Zhou, W.; Fu, Y. Biomimetic dual absorption-adsorption networked MXene aerogel-pump for
                  integrated water harvesting and power generation system. ACS. Nano. 2024, 18, 4376-87. DOI PubMed
               101. Wu, Y.; Shao, B.; Song, Z.; et al. A hygroscopic Janus heterojunction for continuous moisture-triggered electricity generators. ACS.
                  Appl. Mater. Interfaces. 2022, 14, 19569-78. DOI PubMed
               102. Shen, D.; Xiao, M.; Zou, G.; Liu, L.; Duley, W. W.; Zhou, Y. N. Self-powered wearable electronics based on moisture enabled
                  electricity generation. Adv. Mater. 2018, 30, e1705925. DOI PubMed
               103. Yan, H.; Liu, Z.; Qi, R. Development and mechanism investigation of TiO 2 /Co hydrogel microgenerator utilizing humidity gradient.
                  Energy. Convers. Manag. 2023, 291, 117256. DOI
               104. Zhang, Y.; Yang, T.; Shang, K.; et al. Sustainable power generation for at least one month from ambient humidity using unique
                  nanofluidic diode. Nat. Commun. 2022, 13, 3484. DOI PubMed PMC
               105. Wang, H.; Sun, Y.; He, T.; et al. Bilayer of polyelectrolyte films for spontaneous power generation in air up to an integrated 1,000 V
                  output. Nat. Nanotechnol. 2021, 16, 811-9. DOI PubMed
               106. Wu, J.; Zhang, Y.; Pei, D.; et al. A waterborne epoxy vitrimer: enabling moisture-driven actuation, continuous moist-electric generation,
                  and water-assisted degradation. Adv. Sci. 2026, 13, e13579. DOI PubMed PMC
               107. Pan, X.; Wang, Q.; Jin, L.; Ni, Y.; Rosei, F. Integrated paper-hydrogel structure for spontaneous and ultra-durable eco-friendly electricity
                  generation. Nano. Energy. 2025, 136, 110730. DOI
               108. Xu, T.; Ding, X.; Huang, Y.; et al. An efficient polymer moist-electric generator. Energy. Environ. Sci. 2019, 12, 972-8. DOI
               109. Yang, S.; Zhang, L.; Mao, J.; et al. Green moisture-electric generator based on supramolecular hydrogel with tens of milliamp electricity
                  toward practical applications. Nat. Commun. 2024, 15, 3329. DOI PubMed PMC
               110. Zhang, Y.; Guo, S.; Yu, Z. G.; et al. An asymmetric hygroscopic structure for moisture-driven hygro-ionic electricity generation and
                  storage. Adv. Mater. 2022, 34, e2201228. DOI PubMed
               111. Li, M.; Zong, L.; Yang, W.; et al. Biological nanofibrous generator for electricity harvest from moist air flow. Adv. Funct. Mater. 2019,
                  29, 1901798. DOI
               112. Liao, G.; Sun, E.; Kana, E. B. G.; et al. Renewable hemicellulose-based materials for value-added applications. Carbohydr. Polym. 2024,
                  341, 122351. DOI PubMed
               113. You, S.; Chen, M.; Ren, H.; et al. A robust lignin-derived moisture-enabled electric generator with sustained and scalable power output.
                  ACS. Appl. Mater. Interfaces. 2025, 17, 12034-42. DOI PubMed
               114. Gao, X.; Xu, T.; Shao, C.; et al. Electric power generation using paper materials. J. Mater. Chem. A. 2019, 7, 20574-8. DOI
               115. Liu, J.; Huang, L.; He, W.; et al. Moisture-enabled hydrovoltaic power generation with milk protein nanofibrils. Nano. Energy. 2022,
                  102, 107709. DOI
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