Wearable and Stretchable Strain Sensors: Materials, Sensing Mechanisms, and Applications

Носимые и растяжимые тензодатчики: материалы, механизмы сенсорного действия и применения
Hamid Souri, Hritwick Banerjee, Ardian Jusufi, Norbert Radacsi, Adam A. Stokes, Inkyu Park, Metin Sitti, Morteza Amjadi
2020-06-11

capacitive sensingoptical strain sensorsresistive sensingstretchable strain sensorswearable strain sensors
Recent advances in the design and implementation of wearable resistive, capacitive, and optical strain sensors are summarized herein. Wearable and stretchable strain sensors have received extensive research interest due to their applications in personalized healthcare, human motion detection, human–machine interfaces, soft robotics, and beyond. The disconnection of overlapped nanomaterials, reversible opening/closing of microcracks in sensing films, and alteration of the tunneling resistance have been successfully adopted to develop high‐performance resistive‐type sensors. On the other hand, the sensing behavior of capacitive‐type and optical strain sensors is largely governed by their geometrical changes under stretching/releasing cycles. The sensor design parameters, including stretchability, sensitivity, linearity, hysteresis, and dynamic durability, are comprehensively discussed. Finally, the promising applications of wearable strain sensors are highlighted in detail. Although considerable progress has been made so far, wearable strain sensors are still in their prototype stage, and several challenges in the manufacturing of integrated and multifunctional strain sensors should be yet tackled.
1
Applications span personalized healthcare, human motion detection, human–machine interfaces, and soft robotics, but integrated multifunctional sensors remain largely at the prototype stage.
2
Capacitive and optical strain sensing is primarily governed by geometry changes during stretching and releasing cycles.
3
Key design parameters include stretchability, sensitivity, linearity, hysteresis, and dynamic durability.
4
Resistive sensors achieve high performance through nanomaterial disconnection, reversible microcrack opening and closing, and changes in tunneling resistance.
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The review summarizes recent advances in wearable resistive, capacitive, and optical strain sensors and their implementation.

Wearable and stretchable resistive, capacitive, and optical strain sensors

their sensing mechanisms, design parameters, performance characteristics, and applications

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2020-06-11
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Authors
Hamid Souri
Hritwick Banerjee
Ardian Jusufi
Norbert Radacsi
Adam A. Stokes
Inkyu Park
Metin Sitti
Morteza Amjadi
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