Publications by the same author
plus in the repository
plus in Google Scholar

Bibliografische Daten exportieren
 

4D Biomimetic Wrinkled Porous Textiles via Electrospinning and Melt Electrowriting for Advanced Strain Sensing

DOI zum Zitieren der Version auf EPub Bayreuth: https://doi.org/10.15495/EPub_UBT_00009439
URN to cite this document: urn:nbn:de:bvb:703-epub-9439-7

Title data

Vohr Soreño, Zhander ; Apsite, Indra ; Milkin, Pavel ; Ionov, Leonid:
4D Biomimetic Wrinkled Porous Textiles via Electrospinning and Melt Electrowriting for Advanced Strain Sensing.
In: Small Structures. Vol. 7 (2026) Issue 4 . - e202500810.
ISSN 2688-4062
DOI der Verlagsversion: https://doi.org/10.1002/sstr.202500810

[thumbnail of Small Structures - 2026 - Soreño - 4D Biomimetic Wrinkled Porous Textiles via Electrospinning and Melt Electrowriting for.pdf]
Format: PDF
Name: Small Structures - 2026 - Soreño - 4D Biomimetic Wrinkled Porous Textiles via Electrospinning and Melt Electrowriting for.pdf
Version: Published Version
Available under License Creative Commons BY 4.0: Attribution
Download (8MB)

Project information

Project title:
Project's official title
Project's id
Biegsame und atmungsaktive Magnetoelektronik: Auf dem Weg zur elektronischen Propriozeption
448202691
Open Access Publizieren
No information

Project financing: Deutsche Forschungsgemeinschaft

Abstract

We present an innovative strategy for fabricating strain sensors based on nonwoven, porous, and wrinkled textile architectures that mimic the mechanical behavior of biological tissues. These hybrid textiles are produced through a controlled shape transformation of composite fibrous structures fabricated by sequential electrospinning of an elastic polymer and melt electrowriting of a stiffer polymer, constituting a 4D fabrication process. The resulting wrinkled materials exhibit a biomimetic strain-stiffening response, which can be precisely tuned by adjusting the geometry of the melt electrowritten framework. In addition, pre-stretching provides fine control over the effective mechanical modulus, enabling accurate matching to a broad range of biological tissues—from stiff cartilage to soft skin and highly compliant adipose tissue. This versatile approach establishes a pathway toward wearable strain sensors whose mechanical properties are intrinsically harmonized with those of the human body.

Further data

Item Type: Article in a journal
DDC Subjects: 500 Science
500 Science > 530 Physics
500 Science > 540 Chemistry
Institutions of the University: Faculties > Faculty of Engineering Science > Professor Biofabrication > Professor Biofabrication - Univ.-Prof. Dr. Leonid Ionov
Research Institutions > Affiliated Institutes > Bavarian Polymer Institute (BPI)
Faculties
Faculties > Faculty of Engineering Science
Faculties > Faculty of Engineering Science > Professor Biofabrication
Research Institutions
Research Institutions > Affiliated Institutes
Language: English
Originates at UBT: Yes
URN: urn:nbn:de:bvb:703-epub-9439-7
Date Deposited: 18 Jun 2026 07:55
Last Modified: 18 Jun 2026 07:56
URI: https://epub.uni-bayreuth.de/id/eprint/9439

Downloads

Downloads per month over past year