Unknown

Dataset Information

0

Compliant Iontronic Triboelectric Gels with Phase-Locked Structure Enabled by Competitive Hydrogen Bonding.


ABSTRACT: Rapid advancements in flexible electronics technology propel soft tactile sensing devices toward high-level biointegration, even attaining tactile perception capabilities surpassing human skin. However, the inherent mechanical mismatch resulting from deficient biomimetic mechanical properties of sensing materials poses a challenge to the application of wearable tactile sensing devices in human-machine interaction. Inspired by the innate biphasic structure of human subcutaneous tissue, this study discloses a skin-compliant wearable iontronic triboelectric gel via phase separation induced by competitive hydrogen bonding. Solvent-nonsolvent interactions are used to construct competitive hydrogen bonding systems to trigger phase separation, and the resulting soft-hard alternating phase-locked structure confers the iontronic triboelectric gel with Young's modulus (6.8-281.9 kPa) and high tensile properties (880%) compatible with human skin. The abundance of reactive hydroxyl groups gives the gel excellent tribopositive and self-adhesive properties (peel strength > 70 N m-1). The self-powered tactile sensing skin based on this gel maintains favorable interface and mechanical stability with the working object, which greatly ensures the high fidelity and reliability of soft tactile sensing signals. This strategy, enabling skin-compliant design and broad dynamic tunability of the mechanical properties of sensing materials, presents a universal platform for broad applications from soft robots to wearable electronics.

SUBMITTER: Du G 

PROVIDER: S-EPMC11003937 | biostudies-literature | 2024 Apr

REPOSITORIES: biostudies-literature

altmetric image

Publications

Compliant Iontronic Triboelectric Gels with Phase-Locked Structure Enabled by Competitive Hydrogen Bonding.

Du Guoli G   Shao Yuzheng Y   Luo Bin B   Liu Tao T   Zhao Jiamin J   Qin Ying Y   Wang Jinlong J   Zhang Song S   Chi Mingchao M   Gao Cong C   Liu Yanhua Y   Cai Chenchen C   Wang Shuangfei S   Nie Shuangxi S  

Nano-micro letters 20240409 1


Rapid advancements in flexible electronics technology propel soft tactile sensing devices toward high-level biointegration, even attaining tactile perception capabilities surpassing human skin. However, the inherent mechanical mismatch resulting from deficient biomimetic mechanical properties of sensing materials poses a challenge to the application of wearable tactile sensing devices in human-machine interaction. Inspired by the innate biphasic structure of human subcutaneous tissue, this study  ...[more]

Similar Datasets

| S-EPMC9498755 | biostudies-literature
| S-EPMC6233894 | biostudies-literature
| S-EPMC4547818 | biostudies-literature
| S-EPMC11345763 | biostudies-literature
| S-EPMC7254779 | biostudies-literature
| S-EPMC8964870 | biostudies-literature
| S-EPMC7725851 | biostudies-literature
| S-EPMC3758441 | biostudies-literature
| S-EPMC8547772 | biostudies-literature
| S-EPMC9032949 | biostudies-literature