International Journal of Extreme Manufacturing, Volume. 7, Issue 3, 35506(2025)
Textile hybrid electronics for monolithically multimodal wearable monitoring and therapy
[1] [1] Xu K C, Fujita Y, Lu Y Y, Honda S, Shiomi M, Arie T, Akita S and Takei K 2021 A wearable body condition sensor system with wireless feedback alarm functionsAdv. Mater.332008701
[2] [2] Lu Y Yet al2024 Stretchable graphene–hydrogel interfaces for wearable and implantable bioelectronicsNat. Electron.751–65
[3] [3] Choi S Jet al2015 Stretchable heater using ligand-exchanged silver nanowire nanocomposite for wearable articular thermotherapyACS Nano96626–33
[4] [4] Song J Wet al2023 Bioresorbable, wireless, and battery-free system for electrotherapy and impedance sensing at wound sitesSci. Adv.9eade4687
[5] [5] Yao K Met al2022 Encoding of tactile information in hand via skin-integrated wireless haptic interfaceNat. Mach. Intell.4893–903
[6] [6] Li D Fet al2022 Touch IoT enabled by wireless self-sensing and haptic-reproducing electronic skinSci. Adv.8eade2450
[7] [7] Huang Z Let al2018 Three-dimensional integrated stretchable electronicsNat. Electron.1473–80
[8] [8] Kwon Y Tet al2020 All-printed nanomembrane wireless bioelectronics using a biocompatible solderable graphene for multimodal human-machine interfacesNat. Commun.113450
[9] [9] Lopes P A, Santos B C, de Almeida A T and Tavakoli M 2021 Reversible polymer-gel transition for ultra-stretchable chip-integrated circuits through self-soldering and self-coating and self-healingNat. Commun.124666
[10] [10] Kim M, Hong S, Park J J, Jung Y, Choi S H, Cho C, Ha I, Won P, Majidi C and Ko S H 2024 A gradient stiffness-programmed circuit board by spatially controlled phase-transition of supercooled hydrogel for stretchable electronics integrationAdv. Mater.362313344
[11] [11] Rajappan A, Jumet B, Shveda R A, Decker C J, Liu Z, Yap T F, Sanchez V and Preston D J 2022 Logic-enabled textilesProc. Natl Acad. Sci. USA119e2202118119
[12] [12] Shi J Det al2020 Smart textile-integrated microelectronic systems for wearable applicationsAdv. Mater.321901958
[13] [13] Zhang X P, Wang F, Guo H Y, Sun F Q, Li X S, Zhang C T, Yu C W and Qin X H 2024 Advanced cooling textiles: mechanisms, applications, and perspectivesAdv. Sci.112305228
[14] [14] Shi Xet al2021 Large-area display textiles integrated with functional systemsNature591240–5
[15] [15] Zhang B Bet al2024 A three-dimensional liquid diode for soft, integrated permeable electronicsNature62884–92
[16] [16] Pu J Het al2023 Textile electronics for wearable applicationsInt. J. Extrem. Manuf.5042007
[17] [17] Yang Y Xet al2021 A non-printed integrated-circuit textile for wireless theranosticsNat. Commun.124876
[18] [18] Zhang K L, Shi X, Jiang H B, Zeng K W, Zhou Z H, Zhai P, Zhang L H and Peng H S 2024 Design and fabrication of wearable electronic textiles using twisted fiber-based threadsNat. Protocols191557–89
[19] [19] Yang W Fet al2024 Single body-coupled fiber enables chipless textile electronicsScience38474–81
[20] [20] Roh J S 2017 All-fabric interconnection and one-stop production process for electronic textile sensorsText. Res. J.871445–56
[21] [21] Ma X Het al2023 A monolithically integrated in-textile wristband for wireless epidermal biosensingSci. Adv.9eadj2763
[22] [22] Wang P Wet al2024 Well-defined in-textile photolithography towards permeable textile electronicsNat. Commun.15887
[23] [23] Lee H M, Choi S Y, Jung A and Ko S H 2013 Highly conductive aluminum textile and paper for flexible and wearable electronicsAngew. Chem., Int. Ed.527718–23
[24] [24] Zhuang Q N, Yao K M, Zhang C, Song X, Zhou J K, Zhang Y F, Huang Q Y, Zhou Y Z, Yu X G and Zheng Z J 2024 Permeable, three-dimensional integrated electronic skins with stretchable hybrid liquid metal soldersNat. Electron.7598–609
[25] [25] Chen Z H, Lin W S, Zhang C R, Xu Y J, Wei C, Hu H Q, Liao X Q and Chen Z 2024 Multifunctional and reconfigurable electronic fabrics assisted by artificial intelligence for human augmentationAdv. Fiber Mater.6229–42
[26] [26] Yu S Fet al2024 Alterable robotic skin using material gene expression modulationAdv. Funct. Mater.2416984
[27] [27] Huang Z Jet al2024 In-sensor tactile fusion and logic for accurate intention recognitionAdv. Mater.362407329
[28] [28] Tang J B, Zhao X, Li J, Guo R, Zhou Y and Liu J 2017 Gallium-based liquid metal amalgams: transitional-state metallic mixtures (TransM2ixes) with enhanced and tunable electrical, thermal, and mechanical propertiesACS Appl. Mater. Interfaces935977–87
[29] [29] Xu K C, Cai Z M, Luo H Y, Liu X Y, Yang G, Xie H B, Ko S H and Yang H Y 2024 Anin-situhybrid laser-induced integrated sensor system with antioxidative copperInt. J. Extrem. Manuf.6065501
[30] [30] Cai Z Met al2024 Bio-inspired hybrid laser direct writing of interfacial adhesion for universal functional coatingsAdv. Funct. Mater.342408354
[31] [31] Kaidarova A and Kosel J 2021 Physical sensors based on laser-induced graphene: a reviewIEEE Sens. J.2112426–43
[32] [32] Zhang C Y, Zhou W, Geng D, Bai C, Li W D, Chen S Y, Luo T, Qin L F and Xie Y 2021 Laser direct writing and characterizations of flexible piezoresistive sensors with microstructuresOpto-Electron. Adv.4200061
[33] [33] Xu K C, Cai Z M, Luo H Y, Lu Y Y, Ding C L, Yang G, Wang L L, Kuang C F, Liu J Q and Yang H Y 2024 Toward integrated multifunctional laser-induced graphene-based skin-like flexible sensor systemsACS Nano1826435–76
[34] [34] Liu W, Huang Y H, Peng Y D, Walczak M, Wang D, Chen Q, Liu Z and Li L 2020 Stable wearable strain sensors on textiles by direct laser writing of grapheneACS Appl. Nano Mater.3283–93
[35] [35] Wang H Met al2020 Laser writing of Janus graphene/Kevlar textile for intelligent protective clothingACS Nano143219–26
[36] [36] Guo R, Wang H M, Sun X Y, Yao S Y, Chang H, Wang H Z, Liu J and Zhang Y Y 2019 Semiliquid metal enabled highly conductive wearable electronics for smart fabricsACS Appl. Mater. Interfaces1130019–27
[37] [37] Parekh D P, Fancher C M, Mohammed M G, Neumann T V, Saini D, Guerrier J, Ladd C, Hubbard E, Jones J L and Dickey M D 2020 Liquid–solid mixtures of Ga metal infused with Cu microparticles and nanoparticles for microscale and nanoscale patterning of solid metals at room temperatureACS Appl. Nano Mater.312064–70
[38] [38] Jiang Q, Zhang S, Jiang J J, Fei W J and Wu Z G 2021 Pneumatic enabled vertical interconnect access of liquid alloy circuits toward highly integrated stretchable electronicsAdv. Mater. Technol.62000966
[39] [39] Won P, Park J J, Lee T, Ha I, Han S, Choi M, Lee J, Hong S, Cho K J and Ko S H 2019 Stretchable and transparent kirigami conductor of nanowire percolation network for electronic skin applicationsNano Lett.196087–96
[40] [40] Wang H B, Xiang Z H, Zhao P C, Wan J, Miao L M, Guo H, Xu C, Zhao W, Han M D and Zhang H X 2022 Double-sided wearable multifunctional sensing system with anti-interference design for human-ambience interfaceACS Nano1614679–92
[41] [41] Konrad P 2005The ABC of EMG(Noraxon Inc.)
Get Citation
Copy Citation Text
Luo Huayu, Yang Geng, Jin Ziguan, Cai Zimo, Li Yibo, Lu Yuyao, Wang Jian, Yang Huayong, Zheng Yinfei, Xu Kaichen. Textile hybrid electronics for monolithically multimodal wearable monitoring and therapy[J]. International Journal of Extreme Manufacturing, 2025, 7(3): 35506
Category:
Received: Sep. 23, 2024
Accepted: Sep. 29, 2025
Published Online: Sep. 29, 2025
The Author Email: