Textile-Based Mechanoreceptor Array with Tunable Pressure Thresholds for Mutli-dimensional Detection in Healthcare Monitoring

Kitming Ma , Linlin Ma , Chengyu Li , Renbo Zhu , Jing Yang , Su Liu , Xiaoming Tao

Advanced Fiber Materials ›› 2025, Vol. 7 ›› Issue (5) : 1590 -1604.

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Advanced Fiber Materials ›› 2025, Vol. 7 ›› Issue (5) : 1590 -1604. DOI: 10.1007/s42765-025-00572-3
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Textile-Based Mechanoreceptor Array with Tunable Pressure Thresholds for Mutli-dimensional Detection in Healthcare Monitoring

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Abstract

Mimicking human skin mechanoreceptors grouped by various thresholds creates an efficient system to detect interfacial stress between skin and environment, enabling precise human perception. Specifically, the detected signals are transmitted in the form of spikes in the neuronal network via synapses. However, current efforts replicating this mechanism for health-monitoring struggle with limitations in flexibility, durability, and performance, particularly in terms of low sensitivity and narrow detection range. This study develops novel soft mechanoreceptors with tunable pressure thresholds from 1.94 kPa to 15 MPa. The 0.455-mm-thin mechanoreceptor achieves an impressive on–off ratio of over eight orders of magnitude, up to 40,000 repeated compression cycles and after 20 wash cycles. In addition, the helical array reduces the complexity and port count, requiring only two output channels, and a differential simplification algorithm enables two-dimensional spatial mapping of pressure. This array shows stable performance across temperatures ranging from − 40 to 50 °C and underwater at depths of 1 m. This technology shows significant potential for wearable healthcare applications, including sensor stimulation for children and the elderly, and fall detection for Parkinson’s patients, thereby enhancing the functionality and reliability of wearable monitoring systems.

Keywords

Pressure detection / Flexible / Textile / Healthcare monitoring

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Kitming Ma, Linlin Ma, Chengyu Li, Renbo Zhu, Jing Yang, Su Liu, Xiaoming Tao. Textile-Based Mechanoreceptor Array with Tunable Pressure Thresholds for Mutli-dimensional Detection in Healthcare Monitoring. Advanced Fiber Materials, 2025, 7(5): 1590-1604 DOI:10.1007/s42765-025-00572-3

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References

[1]

IqbalSMA, MahgoubI, DuE, LeavittMA, AsgharW. Advances in healthcare wearable devices. npj Flex Electron, 2021, 59

[2]

LyuQ, GongS, YinJ, DysonJM, ChengW. Soft wearable healthcare materials and devices. Adv Healthc Mater, 2021, 10e2100577

[3]

TakeiK, HondaW, HaradaS, ArieT, AkitaS. Toward flexible and wearable human-interactive health-monitoring devices. Adv Healthc Mater, 2015, 4487

[4]

ChenS, WuN, MaL, LinS, YuanF, XuZ, LiW, WangB, ZhouJ. Noncontact heartbeat and respiration monitoring based on a hollow microstructured self-powered pressure sensor. ACS Appl Mater Interfaces, 2018, 103660

[5]

KhanY, OstfeldAE, LochnerCM, PierreA, AriasAC. Monitoring of vital signs with flexible and wearable medical devices. Adv Mater, 2016, 284373

[6]

MahatoK, SahaT, DingSC, SandhuSS, ChangAY, WangJS. Hybrid multimodal wearable sensors for comprehensive health monitoring. Nat. Electron., 2024, 7735

[7]

ShiJ, LiuS, ZhangL, YangB, ShuL, YangY, RenM, WangY, ChenJ, ChenW, ChaiY, TaoX. Smart textile-integrated microelectronic systems for wearable applications. Adv Mater, 2020, 32e1901958

[8]

LibanoriA, ChenGR, ZhaoX, ZhouYH, ChenJ. Smart textiles for personalized healthcare. Nat. Electron., 2022, 5142

[9]

LuoY, AbidianMR, AhnJH, AkinwandeD, AndrewsAM, AntoniettiM, BaoZ, BerggrenM, BerkeyCA, BettingerCJ, ChenJ, ChenP, ChengW, ChengX, ChoiSJ, ChortosA, DagdevirenC, DauskardtRH, DiCA, DickeyMD, DuanX, FacchettiA, FanZ, FangY, FengJ, FengX, GaoH, GaoW, GongX, GuoCF, GuoX, HartelMC, HeZ, HoJS, HuY, HuangQ, HuangY, HuoF, HussainMM, JaveyA, JeongU, JiangC, JiangX, KangJ, KarnaushenkoD, KhademhosseiniA, KimDH, KimID, KireevD, KongL, LeeC, LeeNE, LeePS, LeeTW, LiF, LiJ, LiangC, LimCT, LinY, LipomiDJ, LiuJ, LiuK, LiuN, LiuR, LiuY, LiuY, LiuZ, LiuZ, LohXJ, LuN, LvZ, MagdassiS, MalliarasGG, MatsuhisaN, NathanA, NiuS, PanJ, PangC, PeiQ, PengH, QiD, RenH, RogersJA, RoweA, SchmidtOG, SekitaniT, SeoDG, ShenG, ShengX, ShiQ, SomeyaT, SongY, StavrinidouE, SuM, SunX, TakeiK, TaoXM, TeeBCK, TheanAV, TrungTQ, WanC, WangH, WangJ, WangM, WangS, WangT, WangZL, WeissPS, WenH, XuS, XuT, YanH, YanX, YangH, YangL, YangS, YinL, YuC, YuG, YuJ, YuSH, YuX, ZamburgE, ZhangH, ZhangX, ZhangX, ZhangX, ZhangY, ZhangY, ZhaoS, ZhaoX, ZhengY, ZhengYQ, ZhengZ, ZhouT, ZhuB, ZhuM, ZhuR, ZhuY, ZhuY, ZouG, ChenX. Technology roadmap for flexible sensors. ACS Nano, 2023, 175211

[10]

WangX, LiuZ, ZhangT. Flexible sensing electronics for wearable/attachable health monitoring. Small, 2017, 131602790

[11]

ZangYP, ZhangFJ, DiCA, ZhuDB. Advances of flexible pressure sensors toward artificial intelligence and health care applications. Mater Horiz, 2015, 2140

[12]

TrungTQ, LeeNE. Flexible and stretchable physical sensor integrated platforms for wearable human-activity monitoringand personal healthcare. Adv Mater, 2016, 284338

[13]

RuthSRA, FeigVR, TranH, BaoZN. microengineering pressure sensor active layers for improved performance. Adv Funct Mater, 2020, 302003491

[14]

ShiJ, WangL, DaiZ, ZhaoL, DuM, LiH, FangY. Multiscale hierarchical design of a flexible piezoresistive pressure sensor with high sensitivity and wide linearity range. Small, 2018, 14e1800819

[15]

LiY, ZhangW, ZhaoC, LiW, DongE, XuM, HuangH, YangY, LiL, ZhengL, MaoM, YaoS, WangL, MaJ, WangX, HuangW. Breaking the saturation of sensitivity for ultrawide range flexible pressure sensors by soft-strain effect. Adv Mater, 2024, 36e2405405

[16]

HeJ, XiaoP, LuW, ShiJW, ZhangL, LiangY, PanCF, KuoSW, ChenT. A universal high accuracy wearable pulse monitoring system via high sensitivity and large linearity graphene pressure sensor. Nano Energy, 2019, 59422

[17]

CaiY, ShenJ, YangC-W, WanY, TangH-L, AljarbAA, ChenC, FuJ-H, WeiX, HuangK-W. Mixed-dimensional MXene-hydrogel heterostructures for electronic skin sensors with ultrabroad working range. Sci Adv, 2020, 6eabb5367

[18]

ZhaiW, ZhuJ, WangZ, ZhaoY, ZhanP, WangS, ZhengG, ShaoC, DaiK, LiuC, ShenC. Stretchable, sensitive strain sensors with a wide workable range and low detection limit for wearable electronic skins. ACS Appl Mater Interfaces, 2022, 144562

[19]

LeeJ, ShinS, LeeS, SongJ, KangS, HanH, KimS, KimS, SeoJ, KimD. Highly sensitive multifilament fiber strain sensors with ultrabroad sensing range for textile electronics. ACS Nano, 2018, 124259

[20]

DargahiJ, NajarianS. Human tactile perception as a standard for artificial tactile sensing—a review. Int J Med Robot, 2004, 123

[21]

LeeY, ParkJ, ChoeA, ChoS, KimJ, KoH. Mimicking human and biological skins for multifunctional skin electronics. Adv Funct Mater, 2020, 301904523

[22]

ChortosA, LiuJ, BaoZ. Pursuing prosthetic electronic skin. Nat Mater, 2016, 15937

[23]

LiL, RutlinM, AbrairaVE, CassidyC, KusL, GongS, JankowskiMP, LuoW, HeintzN, KoerberHR. The functional organization of cutaneous low-threshold mechanosensory neurons. Cell, 2011, 1471615

[24]

JohanssonR, VallboÅ, WestlingG. Thresholds of mechanosensitive afferents in the human hand as measured with von Frey hairs. Brain Res, 1980, 184343

[25]

AbrairaVE, GintyDD. The sensory neurons of touch. Neuron, 2013, 79618

[26]

JuB, KimI, LiBM, KnowlesCG, MillsA, GraceL, JurJS. Inkjet printed textile force sensitive resistors for wearable and healthcare devices. Adv Healthc Mater, 2021, 10e2100893

[27]

ZengX, LiuY, LiuF, WangW, LiuX, WeiX, HuY. A bioinspired three-dimensional integrated e-skin for multiple mechanical stimuli recognition. Nano Energy, 2022, 92106777

[28]

LiuZ, HuX, BoR, YangY, ChengX, PangW, LiuQ, WangY, WangS, XuS. A three-dimensionally architected electronic skin mimicking human mechanosensation. Science, 2024, 384987

[29]

HuangZ, YuS, XuY, CaoZ, ZhangJ, GuoZ, WuT, LiaoQ, ZhengY, ChenZ, LiaoX. In-sensor tactile fusion and logic for accurate intention recognition. Adv Mater, 2024, 36e2407329

[30]

XuYJ, YuSF, LiuL, LinWS, CaoZC, HuY, DuanJM, HuangZJ, WeiC, GuoZQ, WuTZ, ChenZ, LiaoQL, ZhengYJ, LiaoXQ. In-sensor touch analysis for intent recognition. Adv Func Mater, 2024, 342411331

[31]

ChenM, XuL, LiuY, YuM, LiY, YeTT. An all-fabric tactile-sensing keypad with uni-modal and ultrafast response/recovery time for smart clothing applications. ACS Appl Mater Interfaces, 2022, 1424946

[32]

ShiX, ZuoY, ZhaiP, ShenJ, YangY, GaoZ, LiaoM, WuJ, WangJ, XuX, TongQ, ZhangB, WangB, SunX, ZhangL, PeiQ, JinD, ChenP, PengH. Large-area display textiles integrated with functional systems. Nature, 2021, 591240

[33]

ZhangYZ, ZouJJ, WangHJ, ZhouC, ChenXZ. A single-layer less-wires stretchable wearable keyboard based on pressure switch conductive textile. Smart Mater Struct, 2022, 31105008

[34]

Zhao J, Preechayasomboon P, Christensen T, Memar AH, Shen Z, Colonnese N, Khbeis M, Zhu M, editors. TouchpadAnyWear: textile-integrated tactile sensors for multimodal high spatial-resolution touch inputs with motion artifacts tolerance. In: Proceedings of the 37th annual ACM symposium on user interface software and technology. 2024.

[35]

LinW, WangB, PengG, ShanY, HuH, YangZ. Skin-inspired piezoelectric tactile sensor array with crosstalk-free row+column electrodes for spatiotemporally distinguishing diverse stimuli. Adv Sci (Weinh), 2021, 82002817

[36]

JangJ, OhB, JoS, ParkS, AnHS, LeeS, CheongWH, YooS, ParkJU. Human-interactive, active-matrix displays for visualization of tactile pressures. Adv Mater Technol, 2019, 41900082

[37]

LeeT, KangY, KimK, SimS, BaeK, KwakY, ParkW, KimM, KimJ. All paper-based, multilayered, inkjet-printed tactile sensor in wide pressure detection range with high sensitivity. Adv Mater Technol, 2022, 72100428

[38]

PintoJO, DoresAR, GeraldoA, PeixotoB, BarbosaF. Sensory stimulation programs in dementia: a systematic review of methods and effectiveness. Expert Rev Neurother, 2020, 201229

[39]

LaddaAM, PfannmoellerJP, KalischT, RoschkaS, PlatzT, DinseHR, LotzeM. Effects of combining 2 weeks of passive sensory stimulation with active hand motor training in healthy adults. PLoS ONE, 2014, 9e84402

[40]

LuoZ, JosePE, HuntsingerCS, PigottTD. Fine motor skills and mathematics achievement in East Asian American and European American kindergartners and first graders. Br J Dev Psychol, 2007, 25595

[41]

BrewerH, Renck JalongoM, RuleAC, SmithLLFine motor skills, executive function, and academic achievement, 2018, Cham. Springer.

[42]

SuggateS, PufkeE, StoegerH. Do fine motor skills contribute to early reading development?. J Res Read, 2018, 411

[43]

HuffmanJM, FortenberryC. Developing fine motor skills. Young Child, 2011, 66100

[44]

AhnSN. Combined effects of virtual reality and computer game-based cognitive therapy on the development of visual-motor integration in children with intellectual disabilities: a pilot study. Occup Ther Int, 2021, 20216696779

[45]

LinHC, ChiuYH, ChenYJ, WuangYP, ChenCP, WangCC, HuangCL, WuTM, HoWH. Continued use of an interactive computer game-based visual perception learning system in children with developmental delay. Int J Med Inform, 2017, 10776

[46]

StromBS, YtrehusS, GrovEK. Sensory stimulation for persons with dementia: a review of the literature. J Clin Nurs, 1805, 201625

[47]

OliveiraJ, GamitoP, SoutoT, CondeR, FerreiraM, CorotneanT, FernandesA, SilvaH, NetoT. Virtual reality-based cognitive stimulation on people with mild to moderate dementia due to Alzheimer’s disease: a pilot randomized controlled trial. Int J Environ Res Public Health, 2021, 185290

[48]

HirtJ, BeerT. Use and impact of virtual reality simulation in dementia care education: a scoping review. Nurse Educ Today, 2020, 84104207

[49]

Wang L-L, Lee I-J, editors. A preliminary study on application of tangible user interface and augmented reality technology with table game and hand-eye coordination operation tasks in the fields of memory and visuospatial perception for the elderly. In: International conference on human-computer interaction. Springer; 2022.

[50]

JirayucharoensakS, IsrasenaP, Pan-NgumS, HemrungrojnS, MaesM. A game-based neurofeedback training system to enhance cognitive performance in healthy elderly subjects and in patients with amnestic mild cognitive impairment. Clin Interv Aging, 2019, 14347

[51]

Zhunio CS, Orellana PC, Patiño AV, editors. A memory game for elderly people: development and evaluation. In: 2020 Seventh international conference on eDemocracy & eGovernment (ICEDEG). IEEE; 2020.

[52]

RamnathU, RauchL, LambertEV, Kolbe-AlexanderT. Efficacy of interactive video gaming in older adults with memory complaints: a cluster-randomized exercise intervention. PLoS ONE, 2021, 16e0252016

[53]

PoeweW, SeppiK, TannerCM, HallidayGM, BrundinP, VolkmannJ, SchragA-E, LangAE. Parkinson disease. Nat Rev Dis Prim, 2017, 31

[54]

RollerWC, GlattS, Vetere-OverfieldB, HassaneinR. Falls and Parkinson’s disease. Clin Neuropharmacol, 1989, 1298

[55]

ChatzakiC, SkaramagkasV, TachosN, ChristodoulakisG, ManiadiE, KefalopoulouZ, FotiadisDI, TsiknakisM. The smart-insole dataset: gait analysis using wearable sensors with a focus on elderly and Parkinson’s patients. Sensors (Basel), 2021, 212821

[56]

YangB, LiY, WangF, AuyeungS, LeungM, MakM, TaoX. Intelligent wearable system with accurate detection of abnormal gait and timely cueing for mobility enhancement of people with Parkinson’s disease. Wearable Technol, 2022, 3e12

[57]

QiuF, ColeMH, DavidsKW, HennigEM, SilburnPA, NetscherH, KerrGK. Effects of textured insoles on balance in people with Parkinson’s disease. PLoS ONE, 2013, 8e83309

[58]

Lirani-SilvaE, VitorioR, BarbieriFA, Orcioli-SilvaD, SimieliL, GobbiLTB. Continuous use of textured insole improve plantar sensation and stride length of people with Parkinson’s disease: a pilot study. Gait Posture, 2017, 58495

Funding

Research Grants Council of Hong Kong(T42-513/24-R)

Innovation and Technology Fund(MRP/020/21)

The Hong Kong Polytechnic University(847A)

The Hong Kong Polytechnic University

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