HomeElectronics NewsFlexible Displays Get Brighter

Flexible Displays Get Brighter

A redesigned electrochemiluminescent display combines a faster ionic liquid, asymmetric electrodes, and reflective architecture to deliver brighter, longer-lasting flexible screens for wearables and sensors.

An ultra-bright ECL device operating at ±3.5 V, 90 Hz. Credit: National University of Singapore

Researchers at the National University of Singapore (NUS), working with Singapore’s Agency for Science, Technology and Research, have developed a brighter and more durable electrochemiluminescent (ECL) display technology aimed at flexible electronics, wearable sensors, and other applications where conventional screens can be difficult to integrate. The redesigned devices reached a brightness of 1,552 candelas per square meter, around three to four times that of a typical indoor smartphone display and 3.2 times higher than conventional ECL devices. 

- Advertisement -

Theadvancement focuses on changing both the electrolyte and electrode structure rather than adding the complex multilayer construction used in many OLED displays. ECL devices generate light through electrically driven chemical reactions in a liquid electrolyte positioned between electrodes. This gives them a thin and flexible structure, but conventional ECL systems have generally suffered from low brightness, short operating times, and inefficient charge transport. 

Demonstration of a smart multicolour ECL panel to indicate glucose concentration in sweat. Credit: College of Design and Engineering, NUS

The NUS team replaced the conventional ionic liquid with one containing a smaller negative ion. This allows charge to move more efficiently at the electrode interface while improving chemical stability. At the same time, the positive ion helps dissolve more light-emitting material into the electrolyte, providing more material for the light-producing reaction. 

The researchers also introduced an asymmetric electrode architecture. One electrode has a textured surface designed to enhance the chemical reaction, while the other is smooth and optimized for transparency. A thin silver mirror behind the rear electrode redirects escaping light toward the viewer, increasing the effective output without requiring substantially more power. 

- Advertisement -
Photographs of UBECL solutions under ambient light (upper figure) and irradiation with UV-light (λ = 365 nm, lower figure). Credit: College of Design and Engineering, NUS

The resulting ECL device maintained substantially higher brightness during repeated switching and operated continuously for about two hours, compared with 29 minutes for the conventional design tested by the researchers.  The team demonstrated the technology through a flexible skin patch that used different colours to communicate glucose-related readings from sweat. A digital seven-segment display also showed that the technology can present changing information, while a flexible solid-state version continued glowing underwater. These capabilities could support wearable health interfaces, smart packaging, environmental sensors, soft robotics, and underwater displays. 

The next challenge is improving blue and green emission, since red currently provides the strongest output. Researchers are also working toward stretchable and self-healing versions that can tolerate deformation and recover after damage, potentially making ECL a practical visual layer for future flexible electronics. 

Loading form…
Akanksha Gaur
Akanksha Gaur
Akanksha Sondhi Gaur is a Senior Technology Journalist at Electronics For You (EFY), specialising in emerging technologies and electronics. Holding a German patent and over a decade of industrial and academic experience, she has interviewed industry leaders, authored in-depth technology features, and published multiple research papers.

SHARE YOUR THOUGHTS & COMMENTS

EFY Prime

Unique DIY Projects

Electronics News

Truly Innovative Electronics

Latest DIY Videos

Electronics Components

Electronics Jobs

Calculators For Electronics