Researchers have developed an innovative electronic skin that combines sensing and visualization in a single device. This smart solution helps in high-resolution mapping of touch for healthcare and robotics applications.
The eluminator, lights up in response to pressure from the fingertip, allowing the shape and distribution of contact to be visualized in real time.
(Source: NUS)
Queenstown/Singapore – Researchers from NUS have developed a next-generation electronic skin that can both sense and directly visualize pressure in real time, addressing key limitations of current wearable sensing technologies.
Electronic skin systems are increasingly used in healthcare, robotics and wearables, but most rely on arrays of sensors connected to external electronics for signal processing and display. These designs often face limitations such as low spatial resolution, wiring complexity and inefficient signal interpretation, making intuitive real-time feedback difficult.
To address these challenges, a team led by Professor Lim Chwee Teck from the NUS Department of Biomedical Engineering and the Institute for Health Innovation & Technology (ihealthtech) developed a soft, ultrathin device called the “eluminator”. The findings were published in Nature Communications on May 2026.
A new paradigm beyond conventional electronic skin
Unlike traditional electronic skins that rely on discrete sensing pixels and typically achieving less than 100 dpi (where dpi indicates how finely pressure details can be resolved within a given area), the eluminator uses a continuous, pixel-free design. With a spatial resolution of approximately 30 µm (847 dpi), it can detect much finer pressure details, enabling high-precision tactile sensing for advanced applications.
At the core of the technology is a mechano-electroluminescent response, where applied pressure directly changes the device’s light emission. When pressure is applied, the device generates visible light patterns that map both the magnitude and shape of contact. This enables immediate and intuitive visualization without the need for separate processing or display systems.
The high-resolution luminescent response allows fine surface features such as the ridges and valleys of fingerprints to be clearly captured in real time, demonstrating its capability for detailed tactile imaging and potential use in biometric applications.
“This technology transforms how we interact with tactile information,” said Prof Lim. “Instead of relying on complex electronics, users can immediately see force distribution as it happens, making the process far more intuitive.”
Applications in healthcare and intelligent systems
The eluminator shows strong potential in surgical training and healthcare monitoring, where precise force control is critical but difficult to achieve due to the lack of tactile feedback. When integrated into surgical tools, it provides real-time visual feedback on applied force, improving precision and reducing the risk of tissue damage. It can also map pressure distribution on the foot, supporting early detection of areas with high risk of foot ulcers in diabetic patients.
Beyond healthcare, the device enables more responsive human–machine interface. It supports both static and dynamic sensing, with optical feedback of around 15 milliseconds and digital readout of around 110 milliseconds, allowing force interactions to be visualized and quantified in near real-time. Its high sensitivity also enables the detection of gentle touches, which is important for robotics and prosthetics.
Soft, durable and versatile platform
The eluminator is ultrathin, approximately 70 µm thick, and made of flexible, non-toxic materials designed to mimic the mechanical properties of human skin. It can stretch beyond 100 per cent strain and conform to curved surfaces such as the body or medical devices.
The device remains stable under repeated mechanical stress, with consistent performance demonstrated over more than 1,000 to 4,000 cycles. It also operates across a broad pressure range, from light touch to approximately 180 kpa (similar to the pressure felt when balancing a heavy textbook on a fingertip), making it suitable for diverse applications.
Date: 08.12.2025
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By combining visual and digital sensing in a single system, the eluminator simplifies device design and enables easier integration into next-generation wearable and biomedical technologies.
Future directions
The research team is working to further improve the device’s sensitivity and reduce its power requirements, while advancing deployment in high-impact healthcare applications.
“Our focus moving forward is not just to improve the technology, but to apply it where it can make a real difference to patient care,” said Prof Lim. “By working closely with clinicians, we aim to develop solutions that improve outcomes and support better decision-making.”