Page 65 - Read Online
P. 65

Wei et al. Soft Sci 2023;3:17  https://dx.doi.org/10.20517/ss.2023.09           Page 37 of 38

                    201.  DOI
               184.      Yue X, Jia Y, Wang X, et al. Highly stretchable and durable fiber-shaped strain sensor with porous core-sheath structure for human
                    motion monitoring. Compos Sci Technol 2020;189:108038.  DOI
               185.      Sharma S, Chhetry A, Maharjan P, et al. Polyaniline-nanospines engineered nanofibrous membrane based piezoresistive sensor for
                    high-performance electronic skins. Nano Energy 2022;95:106970.  DOI
               186.      Hu X, Tian M, Xu T, et al. Multiscale disordered porous fibers for self-sensing and self-cooling integrated smart sportswear. ACS
                    Nano 2020;14:559-67.  DOI
               187.      Lan B, Wu F, Cheng Y, et al. Scalable, stretchable and washable triboelectric fibers for self-powering human-machine interaction and
                    cardiopulmonary resuscitation training. Nano Energy 2022;102:107737.  DOI
               188.      Li S, Cao P, Li F, et al. Self-powered stretchable strain sensors for motion monitoring and wireless control. Nano Energy
                    2022;92:106754.  DOI
               189.      Ding T, Chan KH, Zhou Y, et al. Scalable thermoelectric fibers for multifunctional textile-electronics. Nat Commun 2020;11:6006.
                    DOI  PubMed  PMC
               190.      Duan S, Lin Y, Zhang C, et al. Machine-learned, waterproof MXene fiber-based glove platform for underwater interactivities. Nano
                    Energy 2022;91:106650.  DOI
               191.      Duan S, Wang J, Lin Y, et al. Highly durable machine-learned waterproof electronic glove based on low-cost thermal transfer
                    printing for amphibious wearable applications. Nano Res 2022.  DOI
               192.      Dong B, Yang Y, Shi Q, et al. Wearable triboelectric-human-machine interface (THMI) using robust nanophotonic readout. ACS
                    Nano 2020;14:8915-30.  DOI
               193.      Liu Z, Li Z, Yi Y, et al. Flexible strain sensing percolation networks towards complicated wearable microclimate and multi-direction
                    mechanical inputs. Nano Energy 2022;99:107444.  DOI
               194.      Veeramuthu L, Cho C, Venkatesan M, et al. Muscle fibers inspired electrospun nanostructures reinforced conductive fibers for smart
                    wearable optoelectronics and energy generators. Nano Energy 2022;101:107592.  DOI
               195.      Wu R, Seo S, Ma L, Bae J, Kim T. Full-fiber auxetic-interlaced yarn sensor for sign-language translation glove assisted by artificial
                    neural network. Nanomicro Lett 2022;14:139.  DOI  PubMed  PMC
               196.      Yang  W,  Gong  W,  Gu  W,  et  al.  Self-powered  interactive  fiber  electronics  with  visual-digital  synergies.  Adv  Mater
                    2021;33:e2104681.  DOI
               197.      Zhang L, He J, Liao Y, et al. A self-protective, reproducible textile sensor with high performance towards human-machine
                    interactions. J Mater Chem A 2019;7:26631-40.  DOI
               198.      Bai Z, He T, Zhang Z, et al. Constructing highly tribopositive elastic yarn through interfacial design and assembly for efficient energy
                    harvesting and human-interactive sensing. Nano Energy 2022;94:106956.  DOI
               199.      Yang Y, Shi Q, Zhang Z, Shan X, Salam B, Lee C. Robust triboelectric information-mat enhanced by multi-modality deep learning
                    for smart home. InfoMat 2023:5.  DOI
               200.      Zhu M, Sun Z, Zhang Z, et al. Haptic-feedback smart glove as a creative human-machine interface (HMI) for virtual/augmented
                    reality applications. Sci Adv 2020;6:eaaz8693.  DOI  PubMed  PMC
               201.      Sun Z, Zhu M, Zhang Z, et al. Artificial intelligence of things (AIoT) enabled virtual shop applications using self-powered sensor
                    enhanced soft robotic manipulator. Adv Sci 2021;8:e2100230.  DOI  PubMed  PMC
               202.      Shi Q, Zhang Z, Yang Y, Shan X, Salam B, Lee C. Artificial intelligence of things (AIoT) enabled floor monitoring system for smart
                    home applications. ACS Nano 2021;15:18312-26.  DOI
               203.      Ma S, Wang X, Li P, et al. Optical micro/nano fibers enabled smart textiles for human-machine interface. Adv Fiber Mater
                    2022;4:1108-17.  DOI
               204.      Wen F, Zhang Z, He T, Lee C. AI enabled sign language recognition and VR space bidirectional communication using triboelectric
                    smart glove. Nat Commun 2021;12:5378.  DOI  PubMed  PMC
               205.      Wen F, Sun Z, He T, et al. Machine learning glove using self-powered conductive superhydrophobic triboelectric textile for gesture
                    recognition in VR/AR applications. Adv Sci 2020;7:2000261.  DOI  PubMed  PMC
               206.      Choi S, Yoon K, Lee S, et al. Conductive hierarchical hairy fibers for highly sensitive, stretchable, and water-resistant multimodal
                    gesture-distinguishable sensor, VR applications. Adv Funct Mater 2019;29:1905808.  DOI
               207.      Dong B, Shi Q, Yang Y, Wen F, Zhang Z, Lee C. Technology evolution from self-powered sensors to AIoT enabled smart homes.
                    Nano Energy 2021;79:105414.  DOI
               208.      Zhang Z, Shi Q, He T, et al. Artificial intelligence of toilet (AI-Toilet) for an integrated health monitoring system (IHMS) using smart
                    triboelectric pressure sensors and image sensor. Nano Energy 2021;90:106517.  DOI
               209.      Shi Q, Zhang Z, He T, et al. Deep learning enabled smart mats as a scalable floor monitoring system. Nat Commun 2020;11:4609.
                    DOI  PubMed  PMC
               210.      Zhao Y, Li X, Hou N, et al. Self-powered sensor integration system based on thorn-like polyaniline composites for smart home
                    applications. Nano Energy 2022;104:107966.  DOI
               211.      Xu F, Dong S, Liu G, et al. Scalable fabrication of stretchable and washable textile triboelectric nanogenerators as constant power
                    sources for wearable electronics. Nano Energy 2021;88:106247.  DOI
               212.      He E, Sun Y, Wang X, et al. 3D angle-interlock woven structural wearable triboelectric nanogenerator fabricated with silicone rubber
                    coated graphene oxide/cotton composite yarn. Compos B Eng 2020;200:108244.  DOI
   60   61   62   63   64   65   66   67   68   69   70