Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen 518055, China.
Department of Precision Instrument, Tsinghua University, Beijing 100084, China.
ACS Appl Mater Interfaces. 2023 Jul 26;15(29):34578-34587. doi: 10.1021/acsami.3c06469. Epub 2023 Jul 13.
Monitoring the force of fingertip manipulation without disturbing the natural sense of touch is crucial for digitizing the skills of experienced craftsmen. However, conventional force sensors need to be put between the skin and the objects, which affects the natural sense of the skin. Here, we proposed a fingertip force sensing method based on changes of blood volume and designed a wearable photoelectric fingertip force sensing system (PFFS) for digitalization of traditional Chinese medicine (TCM) pulse diagnosis. The PFFS does not interfere with the fingertips' tactile sense while detecting fingertip force. This PFFS detects the change of blood volume in fingertip by photoelectric plethysmography and can obtain the change of output current under different fingertip forces. We also studied the effect of various factors on PFFS output signals, including emission lights of different wavelengths, ambient temperature, and the user's heartbeat artifact. We further established the relationship between the change of blood volume and fingertip force by combining experimental and theoretical methods. Moreover, we demonstrated the feasibility of the PFFS to detect fingertip forces under commonly used conditions in TCM pulse diagnosis without sensory interference. This PFFS also shows promise for perceiving the viscosity of objects and recognizing gestures in human-computer interaction. This work paves the way for the digitalization of fingertip forces during TCM pulse diagnosis and other fingertip forces under natural conditions.
在不干扰触觉自然感知的情况下监测指尖操作力度对于数字化经验丰富的工匠的技能至关重要。然而,传统的力传感器需要放在皮肤和物体之间,这会影响皮肤的自然感知。在这里,我们提出了一种基于血管容积变化的指尖力感测方法,并设计了一种用于中医脉诊数字化的光电指尖力感测系统(PFFS)。PFFS 在检测指尖力的同时不会干扰指尖的触觉感知。该 PFFS 通过光电体积描记法检测指尖的血管容积变化,并可获得在不同指尖力下的输出电流变化。我们还研究了各种因素对 PFFS 输出信号的影响,包括不同波长的发射光、环境温度和用户的心跳伪影。我们进一步通过实验和理论相结合的方法建立了血管容积变化与指尖力之间的关系。此外,我们证明了在中医脉诊中常用条件下,PFFS 无需感官干扰即可检测指尖力的可行性。该 PFFS 还在人机交互中感知物体粘性和识别手势方面具有广阔的应用前景。这项工作为中医脉诊和其他自然条件下的指尖力数字化铺平了道路。