Natural Human Skin-Inspired Wearable and Breathable Nanofiber-based Sensors with Excellent Thermal Management Functionality

Peng Wang , Xiaodan Li , Guifen Sun , Guoqing Wang , Qing Han , Chuizhou Meng , Zhonghe Wei , Yang Li

Advanced Fiber Materials ›› 2024, Vol. 6 ›› Issue (6) : 1955 -1968.

PDF
Advanced Fiber Materials ›› 2024, Vol. 6 ›› Issue (6) : 1955 -1968. DOI: 10.1007/s42765-024-00464-y
Research Article

Natural Human Skin-Inspired Wearable and Breathable Nanofiber-based Sensors with Excellent Thermal Management Functionality

Author information +
History +
PDF

Abstract

Wearable sensors have been rapidly developed for application in various human monitoring systems. However, the wearing comfort and thermal properties of these devices have been largely ignored, and these characteristics urgently need to be studied. Herein, we develop a wearable and breathable nanofiber-based sensor with excellent thermal management functionality based on passive heat preservation and active Joule heating effects. The multifunctional device consists of a micropatterned carbon nanotube (CNT)/thermoplastic polyurethane (TPU) nanofiber electrode, a microporous ionic aerogel electrolyte and a microstructured Ag/TPU nanofiber electrode. Due to the presence of a supercapacitive sensing mechanism and the application of microstructuration, the sensor shows excellent sensing performance, with a sensitivity of 24.62 kPa−1. Moreover, due to the overall porous structure and hydrophobicity of TPU, the sensor shows good breathability (62 mm/s) and water repellency, with a water contact angle of 151.2°. In addition, effective passive heat preservation is achieved by combining CNTs with high solar absorption rates (85%) as the top layer facing the outside, aerogel with a low thermal conductivity (0.063 W m−1 k−1) as the middle layer for thermal insulation, and Ag with a high infrared reflectance rate as the bottom layer facing the skin. During warming, this material yields a higher temperature than cotton. Furthermore, the active Joule heating effect is realized by applying current through the bottom resistive electrode, which can quickly increase the temperature to supply controlled warming on demand. The proposed wearable and breathable sensor with tunable thermal properties is promising for monitoring and heat therapy applications in cold environments.

Graphical Abstract

We reported a wearable and breathable nanofiber-based sensor with excellent thermal management functionality based on passive heat preservation and active Joule heating effects.

Cite this article

Download citation ▾
Peng Wang, Xiaodan Li, Guifen Sun, Guoqing Wang, Qing Han, Chuizhou Meng, Zhonghe Wei, Yang Li. Natural Human Skin-Inspired Wearable and Breathable Nanofiber-based Sensors with Excellent Thermal Management Functionality. Advanced Fiber Materials, 2024, 6(6): 1955-1968 DOI:10.1007/s42765-024-00464-y

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

SunG, WangP, JiangY, SunH, LiuT, LiG, YuW, MengC, GuoS. Bioinspired flexible, breathable, waterproof and self-cleaning iontronic tactile sensors for special underwater sensing applications. Nano Energy, 2023, 110 108367

[2]

WangP, YuW, LiG, MengC, GuoS. Printable, flexible, breathable and sweatproof bifunctional sensors based on an all-nanofiber platform for fully decoupled pressure–temperature sensing application. Chem Eng J, 2023, 452 139174

[3]

SunG, WangP, MengC. Flexible and breathable iontronic tactile sensor with personal thermal management ability for a comfortable skin-attached sensing application. Nano Energy, 2023, 118 109006

[4]

GuoY, YinF, LiY, ShenG, LeeJ-C. Incorporating wireless strategies to wearable devices enabled by a photocurable hydrogel for monitoring pressure information. Adv Mater, 2023, 35: 2300855

[5]

ChengY, ZhouY, WangR, ChanKH, LiuY, DingT, WangX-Q, LiT, HoGW. An elastic and damage-tolerant dry epidermal patch with robust skin adhesion for bioelectronic interfacing. ACS Nano, 2022, 16: 18608-18620

[6]

WuF, LanB, ChengY, ZhouY, HossainG, GrabherG, ShiL, WangR, SunJ. A stretchable and helically structured fiber nanogenerator for multifunctional electronic textiles. Nano Energy, 2022, 101 107588

[7]

CaiX, GaoL, WangJ, LiD. MOF-integrated hierarchical composite fiber for efficient daytime radiative cooling and antibacterial protective textiles. ACS Appl Mater Inter, 2023, 15: 8537-8545

[8]

ZhangH, LiH, LiY. Biomimetic electronic skin for robots aiming at superior dynamic-static perception and material cognition based on triboelectric-piezoresistive effects. Nano Lett, 2024, 24: 4002-4011

[9]

LiY, LinQ, SunT, QinM, YueW, GaoS. A perceptual and interactive integration strategy toward telemedicine healthcare based on electroluminescent display and triboelectric sensing 3D stacked device. Adv Funct Mater, 2024

[10]

YangW, KanH, ShenG, LiY. A network intrusion detection system with broadband WO3–x/WO3–x-Ag/WO3–x optoelectronic memristor. Adv Funct Mater, 2024, 34: 2312885

[11]

ZhaoP, SongY, XieP, ZhangF, XieT, LiuG, ZhaoJ, HanS-T, ZhouY. All-organic smart textile sensor for deep-learning-assisted multimodal sensing. Adv Funct Mater, 2023, 33: 2301816

[12]

ZhouY, ZhangY, ZhouY, ZhaoL, LiuF, YanX, SunP, LuG. Waterproof breathable multifunctional flexible sensor for underwater tactile sensing and ammonia gas monitoring. Nano Energy, 2023, 117 108881

[13]

GongX, DingM, GaoP, JiY, WangX, LiuX-Y, YuJ, ZhangS, DingB. High-performance waterproof, breathable, and radiative cooling membranes based on nanoarchitectured fiber/meshworks. Nano Lett, 2023, 23: 11337-11344

[14]

HaoY, YanQ, LiuH, HeX, ZhangP, QinX, WangR, SunJ, WangL, ChengY. A stretchable, breathable, and self-adhesive electronic skin with multimodal sensing capabilities for human-centered healthcare. Adv Funct Mater, 2023, 33: 2303881

[15]

FatmaB, AndrabiSM, GuptaS, VermaV, KumarA, PitsalidisC, GargA. Biocompatible, breathable and degradable microbial cellulose based triboelectric nanogenerator for wearable transient electronics. Nano Energy, 2023, 114 108628

[16]

WenJ, WuY, GaoY, SuQ, LiuY, WuH, ZhangH, LiuZ, YaoH, HuangX, TangL, ShiY, SongP, XueH, GaoJ. Nanofiber composite reinforced organohydrogels for multifunctional and wearable electronics. Nano Micro Lett, 2023, 15: 174

[17]

ZhangR, HuZ, WangY, HuH, LiF, LiM, RagauskasA, XiaT, HanH, TangJ, YuH, XuB, PengL. Single-molecular insights into the breakpoint of cellulose nanofibers assembly during saccharification. Nat Comm, 2023, 14: 1100

[18]

ChengX, LiT, YanL, JiaoY, ZhangY, WangK, ChengZ, MaJ, ShaoL. Biodegradable electrospinning superhydrophilic nanofiber membranes for ultrafast oil-water separation. Sci Adv, 2023, 9: eadh8195

[19]

HuC, ChaiR, WeiZ, LiL, ShenG. ZnSb/Ti3C2Tx MXene van der Waals heterojunction for flexible near-infrared photodetector arrays. J Semiconduct, 2024, 45 052601

[20]

HuaQ, ShenG. A wearable sweat patch for non-invasive and wireless monitoring inflammatory status. J Semiconduct, 2023, 44 100401

[21]

BaeJ, LeeJ, HwangW-T, YounD-Y, SongH, AhnJ, NamJ-S, JangJ-S, KimD-w, JoW, KimT-S, SukH-J, BaeP-K, KimI-D. Advancing breathability of respiratory nanofilter by optimizing pore structure and alignment in nanofiber networks. ACS Nano, 2024, 18: 1371-1380

[22]

WangS, WangN, KaiD, LiB, WuJ, YeoJCC, XuX, ZhuJ, LohXJ, HadjichristidisN, LiZ. In-situ forming dynamic covalently crosslinked nanofibers with one-pot closed-loop recyclability. Nat Comm, 2023, 14: 1182

[23]

ChaiB, ShiK, WangY, LiuY, LiuF, JiangP, ShengG, WangS, XuP, XuX, HuangX. Modulus-modulated all-organic core-shell nanofiber with remarkable piezoelectricity for energy harvesting and condition monitoring. Nano Lett, 2023, 23: 1810-1819

[24]

ChengX, ChangX, ZhangX, DaiJ, FongH, YuJ, LiuY-T, DingB. Way to a library of Ti-series oxide nanofiber sponges that are highly stretchable, compressible, and bendable. Adv Mater, 2023, 12: 2307690

[25]

JiangF, ZhouX, LvJ, ChenJ, ChenJ, KongcharoenH, ZhangY, LeePS. Stretchable, breathable, and stable lead-free perovskite/polymer nanofiber composite for hybrid triboelectric and piezoelectric energy harvesting. Adv Mater, 2022, 34: 2200042

[26]

GuanM, WangG, LiJ, RossiRM, ZhuM. Human body-interfacing material strategies for personal thermal and moisture management of wearable systems. Prog Mater Sci, 2023, 139 101172

[27]

ZhuZ, TianZ, LiuY, YueS, LiY, WangZL, YuZ-Z, YangD. Human nervous system inspired modified graphene nanoplatelets/cellulose nanofibers-based wearable sensors with superior thermal management and electromagnetic interference shielding. Adv Funct Mater, 2024, 3: 2315851

[28]

MaZ, ZhaoD, SheC, YangY, YangR. Personal thermal management techniques for thermal comfort and building energy saving. Mater Today Phy, 2021, 20 100465

[29]

WuB, QiQ, LiuL, LiuY, WangJ. Wearable aerogels for personal thermal management and smart devices. ACS Nano, 2024, 18: 9798-9822

[30]

WangJ, YueH, DuZ, ChengX, WangH, DuX. Highly flexible phase-change film with solar thermal storage and sensitive motion detection for wearable thermal management. Chem Eng J, 2023, 466 143334

[31]

WooHK, ZhouK, KimS-K, ManjarrezA, HoqueMJ, SeongT-Y, CaiL. Visibly transparent and infrared reflective coatings for personal thermal management and thermal camouflage. Adv Funct Mater, 2022, 32: 2201432

[32]

LiuH, ZhouF, ShiX, SunK, KouY, DasP, LiY, ZhangX, MatetiS, ChenY, WuZ-S, ShiQ. A thermoregulatory flexible phase change nonwoven for all-season high-efficiency wearable thermal management. Nano-Micro Lett, 2023, 15: 29

[33]

TanC, DongZ, LiY, ZhaoH, HuangX, ZhouZ, JiangJ-W, LongY-Z, JiangP, ZhangT-Y, SunB. A high performance wearable strain sensor with advanced thermal management for motion monitoring. Nat Comm, 2020, 11: 3530

[34]

ChhetryA, KimJ, YoonH, ParkJY. Ultrasensitive interfacial capacitive pressure sensor based on a randomly distributed microstructured iontronic film for wearable applications. ACS Appl Mater Inter, 2019, 11: 3438-3449

[35]

LiS, PanN, ZhuZ, LiR, LiB, ChuJ, LiG, ChangY, PanT. All-in-one iontronic sensing paper. Adv Funct Mater, 2019, 29: 1807343

Funding

National Natural Science Foundation of China under Grant(62174068)

Tianjin Science and Technology Plan Project(22JCZDJC00630)

Higher Education Institution Science and Technology Research Project of Hebei Province(JZX2024024)

Key Technologies Research and Development Program(2022YFC3601400)

Natural Science Foundation of Shandong Province China(ZR2020ME120)

RIGHTS & PERMISSIONS

Donghua University, Shanghai, China

AI Summary AI Mindmap
PDF

285

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/