TY - JOUR
T1 - From Single-Ion to Integrated Multi-Ion Platforms
T2 - Wearable Sweat Sensors for Electrolyte Monitoring
AU - Yang, Jieru
AU - Li, Junyao
AU - Han, Xiao
AU - Wei, Zewen
AU - Wang, Gang
AU - Zou, Ting
N1 - Publisher Copyright:
© 2026 by the authors.
PY - 2026/6
Y1 - 2026/6
N2 - Sweat contains abundant ions, offering a rich source of physiological information for non-invasive health monitoring. Wearable sweat sensors have become a promising technology due to advances in electrochemical devices, sensing materials and structural design. The current monitoring platforms primarily employ two fundamental sensing modalities to convert sweat chemical information into detectable numerical signals: electrochemical (potentiometric, voltammetric, transistor-based) and optical (colorimetric) transduction mechanisms. The demand for more comprehensive physiological and biochemical data in clinical diagnosis and daily health monitoring is driving sensors towards multi-ion detection. Building on these modalities, researchers have optimized hardware and software algorithms based on the characteristics of different ions, thereby promoting the transition of wearable devices from the laboratory to practical applications. Here, we summarize recent progress in wearable sweat ion sensors, focusing on their mechanisms, advantages, and limitations. Finally, current challenges and future prospects of wearable sweat ion sensors for research applications, clinical use, and market demands are discussed.
AB - Sweat contains abundant ions, offering a rich source of physiological information for non-invasive health monitoring. Wearable sweat sensors have become a promising technology due to advances in electrochemical devices, sensing materials and structural design. The current monitoring platforms primarily employ two fundamental sensing modalities to convert sweat chemical information into detectable numerical signals: electrochemical (potentiometric, voltammetric, transistor-based) and optical (colorimetric) transduction mechanisms. The demand for more comprehensive physiological and biochemical data in clinical diagnosis and daily health monitoring is driving sensors towards multi-ion detection. Building on these modalities, researchers have optimized hardware and software algorithms based on the characteristics of different ions, thereby promoting the transition of wearable devices from the laboratory to practical applications. Here, we summarize recent progress in wearable sweat ion sensors, focusing on their mechanisms, advantages, and limitations. Finally, current challenges and future prospects of wearable sweat ion sensors for research applications, clinical use, and market demands are discussed.
KW - electrochemical biosensors
KW - flexible electronics
KW - microfluidics
KW - multi-ion monitoring
KW - optical biosensors
KW - personalized healthcare
KW - sweat analysis
KW - wearable sensors
UR - https://www.scopus.com/pages/publications/105043035511
U2 - 10.3390/bios16060317
DO - 10.3390/bios16060317
M3 - Review article
AN - SCOPUS:105043035511
SN - 2079-6374
VL - 16
JO - Biosensors
JF - Biosensors
IS - 6
M1 - 317
ER -