Touchscreens and other touch-based controls, from smartphones and tablets to smart devices and wearable electronics, have become part of everyday life. However, many touch interfaces depend on batteries, external power, electrodes, and wiring, which can increase costs and make them difficult to install in places where conventional electronics are impractical. Finding a simpler way to create touch-sensitive controls could therefore open new possibilities for wearable devices and the growing Internet of Things (IoT).
Addressing this challenge, a research team led by Associate Professor Hiroki Shigemune and master's student Haruki Higoshi from the Department of Electrical Engineering, College of Engineering, Shibaura Institute of Technology, Tokyo, Japan, developed a single-electrode touch interface that can be created simply by printing patterns onto a PVC sheet with a conventional laser printer. When a person slides a finger across the printed surface, the interaction between the finger and the different areas of the sheet produces electrical signals based on the triboelectric effects (charge transfer between objects when they contact or slide against each other) of the human body. The sheet itself does not require electrical wiring or electrodes. The study was available online on June 27, 2026, and published in Volume 156 of the journal Nano Energy on September 01, 2026.
The researchers found that the design of the printed pattern could determine the signals produced by different finger movements. This allowed the team to recognize the direction and speed of a sliding finger and to create simple controls using different printed patterns. The researchers also demonstrated binary input, including a system that could convert a sequence such as 1010 into the decimal number 10. The interface remained mechanically stable through 1,000 sliding cycles, with no significant changes in the shape or strength of its signals.
“The toner pattern functions as a geometric mask that controls where the skin directly contacts PVC, thereby controlling the timing and polarity of the potential response,” explains Prof. Shigemune. In simpler terms, the printed pattern acts like a set of invisible instructions for the sheet, determining how it responds when someone touches and slides a finger across it. Changing the pattern can therefore change what the interface does, without requiring a completely different electronic device.
The team next tested whether the same approach could recognize more complex inputs. Using machine learning, the system identified seven different printed patterns with 97.1% accuracy and recognized all 26 alphabet characters with 89.2% accuracy. It also distinguished between seven participants, achieving 97.1% accuracy in identifying users. Differences in how people interact with the surface, including finger pressure, sliding speed, contact angle, and contact stability, were reflected in the signals. These findings suggest that the technology could potentially be used not only for controls but also for personalized or security-related interfaces.
“Our approach offers a low-cost, wiring-free platform in which the input function can be changed simply by modifying the printed pattern,” says Prof. Shigemune. This flexibility could make the technology useful for a range of applications, including wearable controls attached to clothing or the body, IoT devices, keyboards, game controllers, and smartphone operation. It could also support user-authentication functions by distinguishing between individual users.
Overall, the study shows how an everyday office technology, a laser printer, could be used to create a new kind of interactive surface. By combining simple printing with signals naturally generated during finger movement, the approach offers a low-cost and customizable alternative for touch-based input. The researchers believe it could contribute to future wearable electronics, IoT systems, consumer devices, and security applications, while further work will explore performance under more demanding real-world conditions.
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Reference
DOI: 10.1016/j.nanoen.2026.112165
About Shibaura Institute of Technology (SIT), Japan
Shibaura Institute of Technology (SIT) is a private university with campuses in Tokyo and Saitama. Since the establishment of its predecessor, Tokyo Higher School of Industry and Commerce, in 1927, it has maintained “learning through practice” as its philosophy in the education of engineers. SIT was the only private science and engineering university selected for the Top Global University Project sponsored by the Ministry of Education, Culture, Sports, Science and Technology and had received support from the ministry for 10 years starting from the 2014 academic year. Its motto, “Nurturing engineers who learn from society and contribute to society,” reflects its mission of fostering scientists and engineers who can contribute to the sustainable growth of the world by exposing their over 9,500 students to culturally diverse environments, where they learn to cope, collaborate, and relate with fellow students from around the world.
Website: https://www.shibaura-it.ac.jp/en/
About Associate Professor Hiroki Shigemune from SIT, Japan
Prof. Hiroki Shigemune is an Associate Professor in the Department of Electrical Engineering, College of Engineering, Shibaura Institute of Technology (SIT), Tokyo, Japan, where he has served since 2021. He is also the Director and Head of the Active Functional Devices Laboratory at SIT. His research interests span mechatronics, actuators, printing technologies, soft robotics, soft actuators, active matter, origami engineering, microfluidics, and printable circuits. His work focuses on developing flexible devices, functional materials, and fabrication technologies for next-generation engineering applications. He has authored 98 publications and received 859 citations, reflecting his contributions to advanced functional device research.
Funding Information
This study was supported by JSPS KAKENHI Grant Number JP24H00728.
Nano Energy
Experimental study
People
Toner-printed pattern recognition system based on triboelectricity of human body for human-computer interaction
1-Sep-2026
The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.