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Page 32 of 34                             Xi et al. Soft Sci 2023;3:26  https://dx.doi.org/10.20517/ss.2023.13

               162.      Huang X, Li J, Liu Y, et al. Epidermal self-powered sweat sensors for glucose and lactate monitoring. Bio-des Manuf 2022;5:201-9.
                    DOI
               163.      Santiago-Malagón S, Río-Colín D, Azizkhani H, Aller-Pellitero M, Guirado G, Del Campo FJ. A self-powered skin-patch
                    electrochromic biosensor. Biosens Bioelectron 2021;175:112879.  DOI  PubMed
               164.      Pu X, Zhang C, Wang ZL. Triboelectric nanogenerators as wearable power sources and self-powered sensors. Natl Sci Rev
                    2023;10:nwac170.  DOI  PubMed  PMC
               165.      Chen C, Chen L, Wu Z, et al. 3D double-faced interlock fabric triboelectric nanogenerator for bio-motion energy harvesting and as
                    self-powered stretching and 3D tactile sensors. Materials Today 2020;32:84-93.  DOI
               166.      Liu C, Wang Y, Zhang N, et al. A self-powered and high sensitivity acceleration sensor with V-Q-a model based on triboelectric
                    nanogenerators (TENGs). Nano Energy 2020;67:104228.  DOI
               167.      Jiang M, Lu Y, Zhu Z, Jia W. Advances in smart sensing and medical electronics by self-powered sensors based on triboelectric
                    nanogenerators. Micromachines 2021;12:698.  DOI  PubMed  PMC
               168.      Zheng N, Xue J, Jie Y, Cao X, Wang ZL. Wearable and humidity-resistant biomaterials-based triboelectric nanogenerator for high
                    entropy energy harvesting and self-powered sensing. Nano Res 2022;15:6213-9.  DOI
               169.      Chandrasekhar A, Alluri NR, Sudhakaran MSP, Mok YS, Kim SJ. A smart mobile pouch as a biomechanical energy harvester
                    towards self-powered smart wireless power transfer applications. Nanoscale 2017;9:9818-24.  DOI
               170.      Zu L, Liu D, Shao J, et al. A self-powered early warning glove with integrated elastic-arched triboelectric nanogenerator and flexible
                    printed circuit for real-time safety protection. Adv Mater Technol 2022;7:2100787.  DOI
               171.      Cao W, Ouyang H, Xin W, et al. A stretchable highoutput triboelectric nanogenerator improved by MXene liquid electrode with high
                    electronegativity. Adv Funct Mater 2020;30:2004181.  DOI
               172.      Lee T, Kim I, Kim D. Flexible hybrid nanogenerator for self-powered weather and healthcare monitoring sensor. Adv Electron Mater
                    2021;7:2100785.  DOI
               173.      Li Z, Xu B, Han J, Huang J, Fu H. A polycation-modified nanofillers tailored polymer electrolytes fiber for versatile biomechanical
                    energy harvesting and full-range personal healthcare sensing. Adv Funct Materials 2022;32:2106731.  DOI
               174.      Li L, Chen Y, Hsiao Y, Lai Y. Mycena chlorophos-inspired autoluminescent triboelectric fiber for wearable energy harvesting, self-
                    powered sensing, and as human–device interfaces. Nano Energy 2022;94:106944.  DOI
               175.      He H, Liu J, Wang Y, et al. An ultralight self-powered fire alarm e-textile based on conductive aerogel fiber with repeatable
                    temperature monitoring performance used in firefighting clothing. ACS Nano 2022;16:2953-67.  DOI  PubMed
               176.      Zhao J, Wang Y, Song X, Zhou A, Ma Y, Wang X. Flexible triboelectric nanogenerator based on polyester conductive cloth for
                    biomechanical energy harvesting and self-powered sensors. Nanoscale 2021;13:18363-73.  DOI
               177.      Zhu Y, Xia Y, Wu M, Guo W, Jia C, Wang X. Wearable, freezing-tolerant, and self-powered electroluminescence system for long-
                    term cold-resistant displays. Nano Energy 2022;98:107309.  DOI
               178.      Zhang P, Deng L, Zhang H, He J, Fan X, Ma Y. Enhanced performance of triboelectric nanogenerator with micro-rhombic patterned
                    PDMS for self-powered wearable sensing. Adv Materials Inter 2022;9:2201265.  DOI
               179.      Zhou L, Liu D, Ren L, et al. Reconfigurable fiber triboelectric nanogenerator for self-powered defect detection. ACS Nano
                    2022;16:7721-31.  DOI  PubMed
               180.      Li W, Song Z, Kong H, et al. An integrated wearable self-powered platform for real-time and continuous temperature monitoring.
                    Nano Energy 2022;104:107935.  DOI
               181.      Jiang D, Ouyang H, Shi B, et al. A wearable noncontact free-rotating hybrid nanogenerator for self-powered electronics. InfoMat
                    2020;2:1191-200.  DOI
               182.      Rahman MT, Rana SMS, Salauddin M, et al. Silicone-incorporated nanoporous cobalt oxide and MXene nanocomposite-coated
                    stretchable fabric for wearable triboelectric nanogenerator and self-powered sensing applications. Nano Energy 2022;100:107454.
                    DOI
               183.      Rayegani A, Saberian M, Delshad Z, et al. Recent advances in self-powered wearable sensors based on piezoelectric and triboelectric
                    nanogenerators. Biosensors 2022;13:37.  DOI  PubMed  PMC
               184.      Zhu M, Yi Z, Yang B, Lee C. Making use of nanoenergy from human - nanogenerator and self-powered sensor enabled sustainable
                    wireless IoT sensory systems. Nano Today 2021;36:101016.  DOI
               185.      Huang X, Qin Q, Wang X, et al. Piezoelectric nanogenerator for highly sensitive and synchronous multi-stimuli sensing. ACS Nano
                    2021;15:19783-92.  DOI  PubMed
               186.      Chen X, Song Y, Su Z, et al. Flexible fiber-based hybrid nanogenerator for biomechanical energy harvesting and physiological
                    monitoring. Nano Energy 2017;38:43-50.  DOI
               187.      Guan X, Xu B, Gong J. Hierarchically architected polydopamine modified BaTiO @P(VDF-TrFE) nanocomposite fiber mats for
                                                                           3
                    flexible piezoelectric nanogenerators and self-powered sensors. Nano Energy 2020;70:104516.  DOI
               188.      Zhou X, Parida K, Halevi O, et al. All 3D-printed stretchable piezoelectric nanogenerator with non-protruding kirigami structure.
                    Nano Energy 2020;72:104676.  DOI
               189.      Zhang  D,  Zhang  X,  Li  X,  et  al.  Enhanced  piezoelectric  performance  of  PVDF/BiCl /ZnO  nanofiber-based  piezoelectric
                                                                                3
                    nanogenerator. Eur Polym J 2022;166:110956.  DOI
               190.      Liu L, Guo X, Lee C. Promoting smart cities into the 5G era with multi-field internet of things (IoT) applications powered with
                    advanced mechanical energy harvesters. Nano Energy 2021;88:106304.  DOI
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