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September 9, 2015IEEE Transactions on Biomedical Engineering

Design and In Vivo Test of a Batteryless and Fully Wireless Implantable Asynchronous Pacing System

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Population

In vitro model and in vivo ovine subject (sheep)

Design

Preclinical

Authors

SASajid M. AsifJHJared W. HansenMKMuhammad Saeed Khan

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Overview

Demonstrates wireless batteryless pacing feasibility in ovine model; leaves open human translation pending further development.

Structured PICO

P
Population
In vitro model and in vivo ovine subject (sheep)
I
Intervention
Batteryless and fully wireless implantable asynchronous pacing system powered by radio frequency (RF) energy (1.2 GHz)
O
Outcome
Ability to capture and harvest RF energy to achieve cardiac pacing

A novel batteryless and fully wireless pacing system using RF energy harvesting successfully achieved asynchronous pacing in an ovine model, demonstrating potential for leadless, batteryless pacemakers.

Cite This Study

Asif et al. (2015) studied this question.

synapsesocial.com/papers/6a70035bfebe604dd708d306https://doi.org/10.1109/tbme.2015.2477403
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