Multiple Artificial Mechanoreceptors Embedded Waterproof Ciliated E-Skin via Direct-Ink-Writing Vertically 3D Printing Toward Health Management of Seafarers

Abstract

Prolonged exposure to high-humidity environments aboard ships presents unique challenges for continuous physiological monitoring of seafarers, where conventional wearable sensors often suffer from moisture-induced signal instability. To address this, we present a waterproof ciliated electronic skin (WCES) inspired by epidermal hair and mechanoreceptors in skin, exhibiting a water contact angle of 113.7° and a pressure sensitivity of 14.9 kPa-1, achieved through a synergistic design combining microcilia-induced stress concentration and dual-mode mechanotransduction of fillers. The embedded carbon black and ionic liquid respectively mimic fast-adapting and slow-adapting receptors via particle sliding and directional ion migration under pressure. To fabricate the high-aspect-ratio microcilia, we develop a vertically 3D printing technique enabled by a volatile solvent to formulate the constituent material into a high-yield-stress ink. Therefore, the sensing performance of printed WCES is stable in humid environments, with less than 7.75% signal degradation after prolonged soaking. Integrated into a health monitoring system suitable for seafarers’ environments, the WCES successfully distinguishes pulse signals from individuals in different physiological states with an accuracy of 97.58% using a Random Forest model. This work offers a robust platform for reliable physiological sensing in maritime environments and highlights a promising route toward real-world deployment of high-performance electronic skin technologies.

Supplementary files

Article information

Article type
Paper
Submitted
17 Jun 2025
Accepted
06 Oct 2025
First published
13 Oct 2025

J. Mater. Chem. A, 2025, Accepted Manuscript

Multiple Artificial Mechanoreceptors Embedded Waterproof Ciliated E-Skin via Direct-Ink-Writing Vertically 3D Printing Toward Health Management of Seafarers

C. Jiang, Z. Yu, C. Liu, S. Wang, T. Zhu, J. Shen, Z. Liu, M. Ai, H. Bi and W. B. Ying, J. Mater. Chem. A, 2025, Accepted Manuscript , DOI: 10.1039/D5TA04906G

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