People rely on a highly tuned sense of touch to manipulate objects, but injuries to the skin and the simple act of wearing gloves can impair this ability.
Along those lines, surgeons, for example, find gloves decrease their ability to manipulate soft tissues. Astronauts are also hampered by heavy spacesuits and find it difficult to work with equipment while wearing heavy gloves.
Having said all of that, there is a new tactile-enhancement system based on a highly sensitive sensor now in development. The sensor has remarkable sensitivity, allowing the wearer to detect the light brush of a feather, the touch of a flower petal, water droplets falling on a finger and even feeling a wire too small to be seen, according to new research.
The research was conducted by Jing Li, Rongrong Bao, Juan Tao, Yufei Zhang, Sheng Fu, and Caofeng Pan all from the CAS Center for Excellence in Nanoscience, Beijing Key Laboratory of Micro-nano Energy and Sensor, Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Ming Dong, from the Beijing Institute of Tracking and Telecommunications Technology, and Dengfeng Peng from the College of Physics and Optoelectronic Engineering, Shenzhen University.
The crack-based sensor used in this device was inspired by a spider’s slit organ, an idea first proposed by other researchers. This pattern of cracks in the exoskeleton allows the spider to detect small movements. In the same way, the ultrathin crack-based strain sensor (UCSS) uses cracks formed in a thin layer of electrically conductive silver.
The UCSS is fabricated from several layers of flexible polymer film coated with silver. The entire system is draped and stretched over a curved surface, causing the silver to crack, and generating parallel channels that conduct electricity and are sensitive to movement.
Investigators found thinner layers of the flexible film and the silver yielded sensors with higher sensitivity, while thicker ones exhibited a larger sensing range. To achieve a balance of these two effects, UCSSs with 15-micron thick polymer layers and 37-nanometer thick silver layers were the best choice.
The investigators also designed a visually aided tactile enhancement system (VATES) by connecting one or more UCSSs to a signal acquisition unit and visual readout device. They attached UCSSs to gloves, either on the fingertips or on the back of the hand, producing a type of electronic skin, or e-skin. Tiny movements, as small as a person’s pulse moving the tip of a finger, could be monitored.
Researchers said UCSSs could be used in a variety of ways: As highly sensitive electronic whiskers, which can be used to map wind flow patterns; as wearable sensors for heartbeat and pulse detection; or as sensors on prosthetics to enhance the sense of touch.
They also demonstrated their use when applied to various parts of the body. UCSSs were able to detect movement due to smiling, frowning and eye blinking.
“These results demonstrate the wide applications of our ultrathin strain sensor in e-skin and human-machine interfaces,” said study co-author Caofeng Pan.