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Human skin interactive self-powered wearable piezoelectric bio-e-skin by electrospun poly-l-lactic acid nanofibers for non-invasive physiological signal monitoring

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posted on 2024-11-15, 10:59 authored by Ayesha Sultana, Sujoy Ghosh, Vitor Gomes da Silva SencadasVitor Gomes da Silva Sencadas, Tian Zheng, Michael HigginsMichael Higgins, Tapas Middya, Dipankar Mandal
Flexible and wearable piezoelectric bio e-skin (PBio-e-skin) based on electrospun poly(l-lactic acid) PLLA nanofiber membrane is demonstrated for non-invasive human physiological signal monitoring and detecting dynamic tactile stimuli. The molecular orientations of the CO dipoles by electrospinning technique result in a longitudinal piezoelectric charge co-efficient (d 33 ) value of ∼(3 ± 1) pm V -1 realized by piezoresponse force microscopy, allowing the PBio-e-skin for pressure sensing applications. The robust mechanical strength (Young's modulus ∼50 MPa) of nanofiber membrane ensures PBio-e-skin's superior operational stability over 375000 cycles. Owing to the superior mechanosensitivity of ∼22 V N -1 , PBio-e-skin has the ability to measure subtle movement of muscle in the internal organs such as esophagus, trachea, motion of joints and arterial pressure by recognition of strains on human skin. This flexible and light weight PBio-e-skin precisely detects vital signs and provides important clinical insights without using any external power source. Eventually, the low cost, environmental friendly PBio-e-skin will have a huge impact in a broad range of applications including self-powered wearable health care systems, human-machine interfacing devices, artificial intelligence and prosthetic skin.

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Citation

Sultana, A., Ghosh, S. Kumar., Sencadas, V., Zheng, T., Higgins, M. J., Middya, T. Ranjan. & Mandal, D. (2017). Human skin interactive self-powered wearable piezoelectric bio-e-skin by electrospun poly-l-lactic acid nanofibers for non-invasive physiological signal monitoring. Journal of Materials Chemistry B, 5 (35), 7352-7359.

Journal title

Journal of Materials Chemistry B

Volume

5

Issue

35

Pagination

7352-7359

Language

English

RIS ID

116637

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