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Self-Folding Paper Sensor Conforms to Body Without Straps or Adhesives

By HospiMedica International staff writers
Posted on 07 Sep 2026

Wearable physiological monitoring often relies on straps or adhesives, which can complicate short-term use and disposal. More...

Creating devices that conform to different body shapes remains difficult and can limit broad deployment. Sustainability is also a concern when wearables are intended to be single-use. To help address these challenges, researchers have developed a paper-based, self-folding helical sensor platform that conforms to body contours without straps or adhesives.

The team at Shibaura Institute of Technology (Tokyo, Japan) created a parametric design framework that converts flat sheets of paper into helical wearable sensors. The approach integrates copper tape electrodes so the devices can capture biosignals while maintaining close contact with the skin. The framework targets rapid, low-cost fabrication of disposable devices for sensing applications.

The method uses inkjet-printed self-folding patterns that bend paper along predefined crease lines. By setting these creases at an angle, the folds form a three-dimensional helix that fits the wearer while remaining flexible during movement. Two software tools support the workflow: one generates and previews the printable pattern for the final structure, and the other automatically creates a customized pattern from user-entered dimensions such as diameter and length.

Using this process, the researchers fabricated finger and forearm devices whose dimensions differed by no more than 5% from target values. A finger-mounted device measured triboelectric signals and galvanic skin response with performance comparable to conventional strap-based wearables. The study was made available online on July 25, 2026, and was published in Volume 5, Issue 7 of Advanced Sensor Research on July 01, 2026.

The investigators report that paper, digital design, and inkjet printing can be combined to produce customized wearable sensors on demand. They note that further testing is needed to evaluate practical use. The work highlights potential for scalable, personalized, and disposable wearable electronics suited to clinical, homecare, and field settings, with additional relevance for touch sensing and human–machine interfaces.

“We were inspired by the way climbing vines naturally wrap around supports in a helical form and adapt to their shape. By combining this concept with our paper self-folding technology, we developed a parametric design tool that converts the desired dimensions of a body part, such as finger, wrist, or arm, into a printable 2D pattern to generate a customized self-folding paper wearable device,” said Dr. Hiroki Shigemune, Associate Professor, College of Engineering, Shibaura Institute of Technology.

“Our software-to-print approach holds great potential in point-of-care or decentralized short-term monitoring of physiological signals, such as galvanic skin response. Because the devices can be designed on demand to fit different body parts, the approach could enable rapid, low-cost, environmentally friendly fabrication of single-use sensors for clinical, homecare, and field settings, as well as for touch sensing and human–machine interfaces,” Shigemune added.

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Shibaura Institute of Technology


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