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Conformal piezoelectric energy harvesting and storage from motions of the heart, lung, and diaphragm

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TLDR
Advanced materials and devices are reported that enable high-efficiency mechanical-to-electrical energy conversion from the natural contractile and relaxation motions of the heart, lung, and diaphragm, demonstrated in several different animal models, each of which has organs with sizes that approach human scales.
Abstract
Here, we report advanced materials and devices that enable high-efficiency mechanical-to-electrical energy conversion from the natural contractile and relaxation motions of the heart, lung, and diaphragm, demonstrated in several different animal models, each of which has organs with sizes that approach human scales. A cointegrated collection of such energy-harvesting elements with rectifiers and microbatteries provides an entire flexible system, capable of viable integration with the beating heart via medical sutures and operation with efficiencies of ∼2%. Additional experiments, computational models, and results in multilayer configurations capture the key behaviors, illuminate essential design aspects, and offer sufficient power outputs for operation of pacemakers, with or without battery assist.

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Large Scale Integration of Functional Radio‐Frequency Flexible MEMS under Large Mechanical Strain

TL;DR: In this paper , an industrial recipe of transferring nitride microelectronic components such as microelectromechanical systems (MEMS) onto flexible and stretchable substrates is demonstrated.
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Thin Film Piezoelectric Nanogenerator Based on (100)-Oriented Nanocrystalline AlN Grown by Pulsed Laser Deposition at Room Temperature

TL;DR: In this paper , a flexible piezoelectric nanogenerator using a thin film of room temperature deposited nanocrystalline aluminium nitride (AlN) was presented.

A piezoelectric energy harvester with inner beam adapting to low and high wind speeds: modeling, simulation and experiment

TL;DR: In this paper , a vortex-induced vibration energy harvester with an inner beam for harvesting wind energy at both low and high wind speed regions is presented, and a comprehensive nonlinear distributed fluid-solid-electric governing equations for vortex induced vibration piezoelectric energy harvesting are derived and the theoretical results show that dimensions of outer beam and diameter of attached cylinder can affect optimal wind speed and maximum power output at both high and low wind speeds.
Book ChapterDOI

Bladeless wind power harvester and aeroelastic harvester

TL;DR: In this paper, two different aerodynamic/hydrodynamic energy harvesters are compared, and the energy conversion performance of the aero-elastic-piezo-electric harvester is discussed.
References
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Journal ArticleDOI

Piezoelectric Nanogenerators Based on Zinc Oxide Nanowire Arrays

TL;DR: This approach has the potential of converting mechanical, vibrational, and/or hydraulic energy into electricity for powering nanodevices.
Journal ArticleDOI

Human-powered wearable computing

TL;DR: This paper explores the possibility of harnessing the energy expended during the user's everyday actions to generate power for his or her computer, thus eliminating the impediment of batteries.
Journal ArticleDOI

1.6 V Nanogenerator for Mechanical Energy Harvesting Using PZT Nanofibers

TL;DR: A piezoelectric nanogenerator based on PZT nanofibers, with a diameter and length of approximately 60 nm and 500 microm, was reported, aligned on interdigitated electrodes of platinum fine wires and packaged using a soft polymer on a silicon substrate.
Journal ArticleDOI

Flexible High-Output Nanogenerator Based on Lateral ZnO Nanowire Array

TL;DR: A simple and effective approach, named scalable sweeping-printing-method, for fabricating flexible high-output nanogenerator (HONG) that can effectively harvesting mechanical energy for driving a small commercial electronic component is reported.
Journal ArticleDOI

Piezoelectric BaTiO₃ thin film nanogenerator on plastic substrates.

TL;DR: The results show that a nanogenerator can be used to power flexible displays by means of mechanical agitations for future touchable display technologies.
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