Review on Intraocular Pressure-Sensing Systems from Fabrication to Applications

Abstract Intraocular pressure (IOP) is amenable to direct regulation and a critical indicator for numerous ocular disorders. Continuous, long-term IOP monitoring provides indispensable clinical data, supporting early diagnosis, risk stratification, and personalized treatment. This review comprehensively summarizes the working principles, key performance metrics, and clinical progress of wearable and implantable IOP sensors. The text elucidates the structural integration of wireless power supplies, signal transmission, and artificial intelligence within wireless IOP monitoring systems. Furthermore, manufacturing and optimization strategies are highlighted, and the considerable advantages of nanomaterials and micro/nanostructures are comprehensively summarized, emphasizing their crucial role in current IOP monitoring devices. Additionally, the diverse applications of IOP sensors in disease diagnosis and therapeutic management are discussed, underscoring their potential for personalized and precision medicine, alongside the challenges remaining in their clinical translation. Finally, current bottlenecks and limitations are addressed, outlining potential solutions, future trends, and potential breakthroughs in next-generation IOP monitoring.

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Publication Details

Journal
ACS Sensors
Published
2026-09-09
DOI
https://doi.org/10.1021/acssensors.6c02609
Primary Topic
Wireless Power Transfer Systems
Type
article
Field-Weighted Citation Impact
0.00
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Review on Intraocular Pressure-Sensing Systems from Fabrication to Applications

Junxuan Li, Zhishan Yuan, Yong Tao, Tie Li et al.
ACS Sensors
Wireless Power Transfer Systems
article

Review on Intraocular Pressure-Sensing Systems from Fabrication to Applications

Junxuan Li, Zhishan Yuan, Yong Tao, Tie Li, Zhou Hong, RuiYang Wang, Yun Zheng
article en

Abstract

Abstract Intraocular pressure (IOP) is amenable to direct regulation and a critical indicator for numerous ocular disorders. Continuous, long-term IOP monitoring provides indispensable clinical data, supporting early diagnosis, risk stratification, and personalized treatment. This review comprehensively summarizes the working principles, key performance metrics, and clinical progress of wearable and implantable IOP sensors. The text elucidates the structural integration of wireless power supplies, signal transmission, and artificial intelligence within wireless IOP monitoring systems. Furthermore, manufacturing and optimization strategies are highlighted, and the considerable advantages of nanomaterials and micro/nanostructures are comprehensively summarized, emphasizing their crucial role in current IOP monitoring devices. Additionally, the diverse applications of IOP sensors in disease diagnosis and therapeutic management are discussed, underscoring their potential for personalized and precision medicine, alongside the challenges remaining in their clinical translation. Finally, current bottlenecks and limitations are addressed, outlining potential solutions, future trends, and potential breakthroughs in next-generation IOP monitoring.

ACS Sensors
Guangdong University of Technology (CN), Capital Medical University (CN), Shanghai Institute of Microsystem and Information Technology (CN)
Openalex Percentile: Top 19%
Wireless Power Transfer Systems
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Review on Intraocular Pressure-Sensing Systems from Fabrication to Applications — Junxuan Li, Zhishan Yuan, et al. · ACS Sensors (2026) | TGRS Research Map | TGRS