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Integrated smart contact lens technology for real-time intraocular pressure monitoring

The proposed innovation incorporates parity-time symmetry for ultra-sensitive wireless detection, enabling the early diagnosis of glaucoma

2026-01-27
(Press-News.org)

Glaucoma is a leading cause of blindness among people who are unable to monitor and manage their intraocular pressure (IOP) daily. The current tools for IOP measurement are not portable, convenient, easily accessible, or capable of continuous (24/7) monitoring. These limitations in existing IOP devices are a major contributor to inadequate ocular health management in glaucoma patients. This mismanagement could result in severe and irreparable problems for patients.

This problem is particularly concerning, considering that one of the factors behind increased IOP is age. As the global population ages, such ocular complications are likely to become more common, especially in Japan, which faces one of the world’s most severe population-aging crises. Therefore, prompt and proactive efforts to address the current limitations of ocular health monitoring are expected to benefit the nation significantly over the long run.

In a recent breakthrough, a team of researchers from Japan, led by Professor Takeo Miyake from the Graduate School of Information, Production and Systems, Waseda University, Japan, and including Te Xiao, Hanzhe Zhang, Taiki Takamatsu, and Assistant Professor Saman Azhari from Waseda University, along with Professor Kazuhiro Kimura and Assistant Professor Atsushige Ashimori from Yamaguchi University, Japan, has proposed an innovative design and integration of a thin film into a contact lens, enabling users to monitor their IOP in real time during everyday use. Their novel findings were made available online and published in the journal npj Flexible Electronics on January 13, 2026.

In this study, the researchers fabricated a resistive sensor based on a cracked PEDOT:PSS/PVA (PEDOT: Poly(3,4-ethylenedioxythiophene); PSS: Poly(styrenesulfonate); PVA: Polyvinyl alcohol) thin film that leverages a multilayer structure and the intrinsic properties of each layer to readily and effectively measure and monitor the IOP in real time. They notably combined the sensor with a 70 MHz double-loop gold antenna for high-precision and continuous IOP measurement.

Moreover, by using state-of-the-art parity-time-symmetric wireless technology, the team remarkably increased the device's sensitivity by a factor of 183, compared to conventional wireless sensing systems, making it suitable for everyday use by people who require IOP management.

Furthermore, both in vitro wireless IOP measurements of a porcine eye and in vivo wireless IOP measurements in rabbit eyes modified via microbead injection, obtained using the fabricated sensor lens, showed a strong linear correlation with corresponding measurements made using a commercial tonometer.

This research demonstrates how innovative, outside-the-box thinking facilitates the utilization of the properties of a well-known material such as PEDOT:PSS through a few simple yet innovative steps to tackle one of the key challenges in ocular health monitoring. Professor Miyake points out: “It is generally very challenging to fabricate a device on a contact lens due to the size limitations while maintaining user comfort. To address these limitations, we used microfabrication to fabricate an IOP sensor that fits well on the contact lens while maintaining flexibility and user comfort. Moreover, the use of parity-time symmetry allows for much higher sensitivity in wireless detection, making this work a major step towards the future of daily, real-time ocular health monitoring devices.”

“Overall, our platform is promising for long-term, non-invasive IOP monitoring, thus making a significant contribution to the early diagnosis and treatment of glaucoma,” concludes Professor Miyake.

 

***

 

Reference
Authors: Te Xiao1, Hanzhe Zhang1, Taiki Takamatsu1, Atsushige Ashimori2, Saman Azhari1, Kazuhiro Kimura2, and Takeo Miyake1
DOI: 10.1038/s41528-025-00507-3
Affiliations: 1Graduate School of Information, Production and Systems, Waseda University, Japan
2Department of Ophthalmology, Yamaguchi University, Japan    

 

About Waseda University
Located in the heart of Tokyo, Waseda University is a leading private research university that has long been dedicated to academic excellence, innovative research, and civic engagement at both the local and global levels since 1882. The University has produced many changemakers in its history, including eight prime ministers and many leaders in business, science and technology, literature, sports, and film. Waseda has strong collaborations with overseas research institutions and is committed to advancing cutting-edge research and developing leaders who can contribute to the resolution of complex, global social issues. The University has set a target of achieving a zero-carbon campus by 2032, in line with the Sustainable Development Goals (SDGs) adopted by the United Nations in 2015. 

To learn more about Waseda University, visit https://www.waseda.jp/top/en  

 

About Professor Takeo Miyake from Waseda University, Japan
Takeo Miyake has been a Professor at the Graduate School of Information, Production and Systems at Waseda University, Japan, since 2021. He received his PhD in Nanoscience and Nanoengineering from the same University in 2008. His research interests include bioiontronics, biofuel batteries, bioprotonics, and bioelectronics. He is a member of the Materials Research Society, the Surface Science Society of Japan, and the Japan Society of Applied Physics. He has authored over 100 research papers in the field of biomedical engineering and has received more than 3,000 citations.

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[Press-News.org] Integrated smart contact lens technology for real-time intraocular pressure monitoring
The proposed innovation incorporates parity-time symmetry for ultra-sensitive wireless detection, enabling the early diagnosis of glaucoma