A nanofiber based artificial electronic skin with high pressure sensitivity and 3D conformability.
Explore this paper's citation graph
Summary
A nanofiber based proof-of-concept wireless pressure sensor with a bluetooth module as a signal transmitter is proposed and has demonstrated great promise for wireless monitoring of human physiological signals, indicating a potential for large scale wearable electronic devices or e-skin.
- Type
- article
- Published
- 2016-06-16
- Cited by
- 120
- References
- 27
- OpenAlex
- https://openalex.org/W2395323840
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:206040960
Keywords
Electronic skin, Nanofiber, Materials science, Pressure sensor, Sensitivity (control systems)
References
- Highly Sensitive and Multimodal All‐Carbon Skin Sensors Capable of Simultaneously Detecting Tactile and Biological Stimuli
- A Graphene-Based Resistive Pressure Sensor with Record-High Sensitivity in a Wide Pressure Range
- A Flexible and Highly Pressure‐Sensitive Graphene–Polyurethane Sponge Based on Fractured Microstructure Design
- Skin-like pressure and strain sensors based on transparent elastic films of carbon nanotubes.
- 25th Anniversary Article: The Evolution of Electronic Skin (E‐Skin): A Brief History, Design Considerations, and Recent Progress
- Highly Conductive Stretchable and Biocompatible Electrode–Hydrogel Hybrids for Advanced Tissue Engineering
- An ultra-lightweight design for imperceptible plastic electronics
- Flexible polymer transistors with high pressure sensitivity for application in electronic skin and health monitoring
- An ultra-sensitive resistive pressure sensor based on hollow-sphere microstructure induced elasticity in conducting polymer film
- A High-Throughput, Controllable, and Environmentally Benign Fabrication Process of Thermoplastic Nanofibers
- A flexible and highly sensitive strain-gauge sensor using reversible interlocking of nanofibres.
- A novel hierarchically structured and highly hydrophilic poly(vinyl alcohol-co-ethylene)/poly(ethylene terephthalate) nanoporous membrane for lithium-ion battery separator
- Transparent, Low‐Power Pressure Sensor Matrix Based on Coplanar‐Gate Graphene Transistors
- A Sensitive and Biodegradable Pressure Sensor Array for Cardiovascular Monitoring
- A Chitin Nanofiber Ink for Airbrushing, Replica Molding, and Microcontact Printing of Self‐assembled Macro‐, Micro‐, and Nanostructures
- Highly sensitive flexible pressure sensors with microstructured rubber dielectric layers.
- Highly Skin‐Conformal Microhairy Sensor for Pulse Signal Amplification
- Conductive Fiber‐Based Ultrasensitive Textile Pressure Sensor for Wearable Electronics
- Multiscale patterning of plasmonic metamaterials.
- Three-dimensional nanopillar-array photovoltaics on low-cost and flexible substrates.
Cited by
- Piezo-phototronic effect improved performance of n-ZnO nano-arrays/p-Cu2O film based pressure sensor synthesized on flexible Cu foil
- Flexible and Highly Sensitive Pressure Sensors Based on Bionic Hierarchical Structures
- Stretchable electronic skin based on silver nanowire composite fiber electrodes for sensing pressure, proximity, and multidirectional strain.
- Three-dimensional non-woven poly(vinyl alcohol-co-ethylene) nanofiber based polyaniline flexible electrode for high performance supercapacitor
- Flexible and wearable strain sensing fabrics
- A Review of Injectable and Implantable Biomaterials for Treatment and Repair of Soft Tissues in Wound Healing
- Facile synthesis of three-dimensional (3D) interconnecting polypyrrole (PPy) nanowires/nanofibrous textile composite electrode for high performance supercapacitors
- Recent progresses on flexible tactile sensors
- Bio-inspired interlocking random 3-D structures for tactile and thermal sensing
- Piezo-phototronic effect enhanced photo-detector based on ZnO nano-arrays/NiO structure
- Advanced carbon materials for flexible and wearable sensors
- 基于碳化叶脉纤维的压力传感器的研究 Investigation of Pressure Sensor Based on Carbonized Leaf Vein Fibers
- Paper/Carbon Nanotube-Based Wearable Pressure Sensor for Physiological Signal Acquisition and Soft Robotic Skin.
- Nature-Inspired Structural Materials for Flexible Electronic Devices.
- Highly sensitive, self-powered and wearable electronic skin based on pressure-sensitive nanofiber woven fabric sensor
- A highly sensitive and wide-range pressure sensor based on a carbon nanocoil network fabricated by an electrophoretic method
- Highly stretchable fiber-shaped e-textiles for strain/pressure sensing, full-range human motions detection, health monitoring, and 2D force mapping
- Continuously Producible Ultrasensitive Wearable Strain Sensor Assembled with Three-Dimensional Interpenetrating Ag Nanowires/Polyolefin Elastomer Nanofibrous Composite Yarn.
- Polyurethane foam coated with a multi-walled carbon nanotube/polyaniline nanocomposite for a skin-like stretchable array of multi-functional sensors
- Flexible and Lightweight Pressure Sensor Based on Carbon Nanotube/Thermoplastic Polyurethane-Aligned Conductive Foam with Superior Compressibility and Stability.
Related papers
- Three-dimensional Self-healable Touch Sensing Artificial Skin Device.
- Self-powered artificial skin made of engineered silk protein hydrogel
- Potential applications of human artificial skin and electronic skin (e-skin): a review
- Progress in achieving high-performance piezoresistive and capacitive flexible pressure sensors: A review
- Highly sensitive, self-powered and wearable electronic skin based on pressure-sensitive nanofiber woven fabric sensor
- Thiolated Graphene@Polyester Fabric-Based Multilayer Piezoresistive Pressure Sensors for Detecting Human Motion.
- A bionic tactile plastic hydrogel-based electronic skin constructed by a nerve-like nanonetwork combining stretchable, compliant, and self-healing properties
- Whisker‐Implanted Biomimetic Electronic Skin for Tactile Sensing and Blind Perception
- Crocodile-Skin-Inspired Omnidirectionally Stretchable Pressure Sensor.
- Large-Area, Flexible SnS/Paper-Based Piezoresistive Pressure Sensor for Artificial Electronic Skin Application