Advanced Functional Materials · 2015 · 369 citations · 36 references
EngineeringWearable TechnologyWearable SensorsBiomedical EngineeringFlexible SensorElectronic DevicesNanoengineeringBiomedical DevicesDiaphragm BreathingMaterials ScienceHuman BodyElectrical EngineeringEnergy HarvestingWearable ElectronicsSelf-powered SensorsElastic RubberBiomedical SensorsElectronic MaterialsFlexible SensorsSensorsFlexible ElectronicsPiezoelectric NanogeneratorsNano Electro Mechanical SystemTriboelectric NanogeneratorSelf-powered Nanodevices
The study develops a stretchable‑rubber triboelectric nanogenerator that harvests energy and functions as a self‑powered multifunctional sensor, and investigates factors affecting its output performance. It consists of an elastic rubber layer and an aluminum film electrode; stretching and releasing the rubber changes triboelectric charge distribution, inducing alternating charge flow between the aluminum electrode and ground, a principle verified by numerical calculations and experiments. When integrated into a sensor system, the SR‑based TENG detects movements in multiple directions, can be attached to the human body to sense diaphragm breathing and joint motion, thereby expanding TENG applications beyond power generation to active sensing.
A stretchable‐rubber‐based (SR‐based) triboelectric nanogenerator (TENG) is developed that can not only harvest energy but also serve as self‐powered multifunctional sensors. It consists of a layer of elastic rubber and a layer of aluminum film that acts as the electrode. By stretching and releasing the rubber, the changes of triboelectric charge distribution/density on the rubber surface relative to the aluminum surface induce alterations to the electrical potential of the aluminum electrode, leading to an alternating charge flow between the aluminum electrode and the ground. The unique working principle of the SR‐based TENG is verified by the coupling of numerical calculations and experimental measurements. A comprehensive study is carried out to investigate the factors that may influence the output performance of the SR‐based TENG. By integrating the devices into a sensor system, it is capable of detecting movements in different directions. Moreover, the SR‐based TENG can be attached to a human body to detect diaphragm breathing and joint motion. This work largely expands the applications of TENG not only as effective power sources but also as active sensors; and opens up a new prospect in future electronics.
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Flexible triboelectric generator
Feng Ru Fan, Zhong‐Qun Tian, Zhong Lin Wang · Nano Energy · 2012 · 6.3K citations
Ultrathin and lightweight organic solar cells with high flexibility
Martin Kaltenbrunner, Matthew S. White, Eric Daniel Głowacki et al. · Nature Communications · 2012 · 1.7K citations · Full text