Page 356 - IJB-9-1
P. 356

International Journal of Bioprinting                      High-performance electrospun PVDF/AgNP/Mxene fiber



            detection of human motion, based on their exceptional   Availability of data
            flexibility and energy-harvesting capabilities. The sensor   Not applicable.
            voltage outputs, depending on whether  the sensor was
            detecting the clapping of hands or the moving of arms   References
            and fingers, ranged from 4 V to 15 V as a result of the
            pressure imparted to the sensor upon being touched. In   1.   Xue B, Xie H, Zhao J, et al., 2022, Flexible piezoresistive
            view of the irregularity in the forces applied, there were   pressure sensor based on electrospun rough polyurethane
            variations in the sizes of the voltage peaks. The PVDF/  nanofibers  film  for  human  motion  monitoring.
            AgNP/MXene fibers demonstrated exceptional stability   Nanomaterials, 12(4): 723.
            and excellent output performance, enabling their use for      https://doi.org/10.3390/nano12040723
            energy harvesting and the powering of LEDs.
                                                               2.   Mohapatra Dand Subudhi B, 2022, Development of a
            Acknowledgements                                      cost effective iot-based weather monitoring system.  IEEE
                                                                  Consum Electron Mag, 11: 81–86.
            The  authors  thank  the  staff  at  National  Sun  Yat-sen      https://doi.org/10.1109/MCE.2021.3136833
            University for their assistance with the TEM (ID:
            EM022600) experiments.                             3.   Sengupta D, Kamat AM, Smit Q, et al., 2022, Piezoresistive
                                                                  3D graphene-PDMS spongy pressure sensors for IoT enabled
            Funding                                               wearables and smart products. Flex Print Electron, 7.
                                                                  https://doi.org/10.1088/2058-8585/ac4d0e
            This work was supported by the grant KAFGH_A_111002
            from Kaohsiung Armed Forces General Hospital and   4.   Yang X, Liu G, Guo Q, et al., 2022, Triboelectric sensor array
            financially supported by the Ministry of Science and   for internet of things based smart traffic monitoring and
            Technology, Taiwan, under contracts MOST 110-2124-M-  management system. Nano Energy, 92: 106757.
            002-013 and 111-2223-E-110-004.                       https://doi.org/10.1016/j.nanoen.2021.106757
                                                               5.   Xiao P, Zhou W, Liang Y, et al., 2022, Biomimetic skins
            Conflict of interest                                  enable strain‐perception‐strengthening soft morphing. Adv
            The authors declare no conflicts of interest.         Funct Mater: 2201812.
                                                                  https://doi.org/10.1002/adfm.202201812
            Author contributions                               6.   He J, Xiao P, Lu W, et al., 2019, A Universal high accuracy
            Conceptualization: Cheng-Tang Pan, Karishma Dutt, Amit   wearable pulse monitoring system via high sensitivity and
               Kumar                                              large linearity graphene pressure sensor.  Nano Energy,
            Data curation: Karishma Dutt, Rahul Kumar, Zhi-Hong Wen  59: 422–433.
            Formal analysis: Karishma Dutt, Yi-Ting Lo            https://doi.org/10.1016/j.nanoen.2019.02.036
            Funding acquisitions: Cheng-Tang Pan, Shiao-Wei Kuo  7.   He J, Xiao P, Shi J, et al., 2018, High performance humidity
            Investigation: Karishma Dutt, Amit Kumar              fluctuation sensor for wearable devices via a bioinspired
            Methodology: Cheng-Tang Pan, Karishma Dutt            atomic-precise tunable graphene-polymer heterogeneous
            Project administration: Karishma Dutt                 sensing junction. Chem Mater, 30(13): 4343–4354.
            Resources: Cheng-Tang Pan, Shiao-Wei Ku, Cheng-Hsin   https://doi.org/10.1021/acs.chemmater.8b01587
               Chuang
            Software: Karishma Dutt, Chien-Shu Wang,           8.   Wang S, Xiao P, Liang Y, et al., 2018, Network cracks-
            Supervision: Cheng-Tang Pan, Shiao-Wei Kuo            based wearable strain sensors for subtle and large strain
            Visualization: Karishma Dutt, Shiao-Wei Kuo and       detection of human motions.  J Mater Chem C, 6(19):
                                                                  5140–5147.
            Writing – original draft: Karishma Dutt
            Writing – review  & editing: Cheng-Tang Pan, Karishma   https://doi.org/10.1039/C8TC00433A
               Dutt, Shiao-Wei Kuo                             9.   Pusty  Mand  Shirage  PM,  2022,  Insights  and  perspectives
                                                                  on graphene-PVDF based nanocomposite materials for
            Ethics approval and consent to participate            harvesting mechanical energy. J Alloys Compd: 164060.
            Not applicable.                                       https://doi.org/10.1016/j.jallcom.2022.164060
                                                               10.  Meng K, Xiao X, Wei W, et al., 2022, Wearable pressure
            Consent for publication                               sensors for pulse wave monitoring. Adv Mater, 34: e2109357.
            Not applicable.                                       https://doi.org/10.1002/adma.202109357


            V                                              348                      https://doi.org/10.18063/ijb.v9i1.647
            Volume 9 Issue 1 (2023)olume 9 Issue 1 (2023)
   351   352   353   354   355   356   357   358   359   360   361