Ultrasensitive mechanical crack-based sensor inspired by the spider sensory system
Explore this paper's citation graph
Summary
It is demonstrated that sensors based on nanoscale crack junctions and inspired by the geometry of a spider’s slit organ can attain ultrahigh sensitivity and serve multiple purposes, and that they are applicable to highly selective speech pattern recognition and the detection of physiological signals.
- Type
- article
- Published
- 2014-12-10
- Cited by
- 1,461
- References
- 24
- OpenAlex
- https://openalex.org/W1989172022
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:4466903
Keywords
Gauge factor, Materials science, Nanoscopic scale, Nanotechnology, Vibration
References
- Taxel-Addressable Matrix of Vertical-Nanowire Piezotronic Transistors for Active and Adaptive Tactile Imaging
- An ultraviolet-curable mold for sub-100-nm lithography.
- The Near-Tip Fields of Fast Cracks
- Effect of crack surface geometry on fatigue crack closure
- A stretchable carbon nanotube strain sensor for human-motion detection.
- Self‐Powered Nanosensors and Nanosystems
- Nanowire active-matrix circuitry for low-voltage macroscale artificial skin.
- A large-area, flexible pressure sensor matrix with organic field-effect transistors for artificial skin applications.
- Biomaterial systems for mechanosensing and actuation
- Highly Stretchable Transistors Using a Microcracked Organic Semiconductor
- Stretchable gold conductors on elastomeric substrates
- Guided fracture of films on soft substrates to create micro/nano-feature arrays with controlled periodicity
- An ultra-lightweight design for imperceptible plastic electronics
- Patterning by controlled cracking
- Periodic cracking of films supported on compliant substrates
- Extended cyclic uniaxial loading of stretchable gold thin-films on elastomeric substrates
- Stretchable and highly sensitive graphene-on-polymer strain sensors
- Highly sensitive flexible pressure sensors with microstructured rubber dielectric layers.
- Materials for stretchable electronics in bioinspired and biointegrated devices
- Localization of Folds and Cracks in Thin Metal Films Coated on Flexible Elastomer Foams
Cited by
- An All‐Elastomeric Transparent and Stretchable Temperature Sensor for Body‐Attachable Wearable Electronics
- A highly sensitive flexible strain sensor based on the contact resistance change of carbon nanotube bundles
- Direct imaging of defect formation in strained organic flexible electronics by Scanning Kelvin Probe Microscopy
- Superhydrophobic WS2‐Nanosheet‐Wrapped Sponges for Underwater Detection of Tiny Vibration
- Bioinspired Ultrasensitive and Stretchable MXene-Based Strain Sensor via Nacre-Mimetic Microscale "Brick-and-Mortar" Architecture.
- Decoding the locational information in the orb web vibrations of Araneus diadematus and Zygiella x-notata
- Highly durable crack sensor integrated with silicone rubber cantilever for measuring cardiac contractility
- An Ultrahigh Sensitive Paper-Based Pressure Sensor with Intelligent Thermotherapy for Skin-Integrated Electronics
- A Triple-Mode Flexible E-Skin Sensor Interface for Multi-Purpose Wearable Applications
- Transparent Stretchable Self-Powered Patchable Sensor Platform with Ultrasensitive Recognition of Human Activities.
- Highly Stable Liquid Metal-Based Pressure Sensor Integrated with a Microfluidic Channel
- Fully Printed Foldable Integrated Logic Gates with Tunable Performance Using Semiconducting Carbon Nanotubes
- Recent Progress in Electronic Skin
- The mechanics of tessellations - bioinspired strategies for fracture resistance.
- Fracture of graphene: a review
- High‐Performance, Mechanically Flexible, and Vertically Integrated 3D Carbon Nanotube and InGaZnO Complementary Circuits with a Temperature Sensor
- Applied physics: The virtues of tiling
- Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
- Flexible and Highly Sensitive Strain Sensors Fabricated by Pencil Drawn for Wearable Monitor
- Nanorecycling: Monolithic Integration of Copper and Copper Oxide Nanowire Network Electrode through Selective Reversible Photothermochemical Reduction
Related papers
- Effects of chirality and impurities on the performance of carbon nanotube-based piezoresistive sensors
- Structure–property–processing relationships of single-wall carbon nanotube thin film piezoresistive sensors
- Sensitivity Improvement of MEMS Tactile Sensor with Cr-N Thin Film Strain Gauge
- Temperature Dependence of Gauge Factor of Printed Piezoresistive Layers Embedded in Organic Coatings
- Graphite-Based Bioinspired Piezoresistive Soft Strain Sensors with Performance Optimized for Low Strain Values.
- Using Micro-Molding and Stamping to Fabricate Conductive Polydimethylsiloxane-Based Flexible High-Sensitivity Strain Gauges
- Ultra‐High Gauge Factor Strain Sensor with Wide‐Range Stretchability
- Micromachined pressure sensors for electromechanical characterization of carbon nanotubes
- Feasibility of multi-walled carbon nanotube/epoxy thermoset-based strain sensors for sensing in structural applications