arrow
Return

Successful pacing using a batteryless sunlight-powered pacemaker

delete2014-06-10
delete62
delete
OA
AI
A
Andreas Haeberlin *
A
Adrian Zurbuchen
J
Jakob Schaerer
J
Joerg Wagner
S
Sébastien Walpen
C
Christoph Huber
H
H. Haeberlin
J
Juerg Fuhrer
R
Rolf Vogel
DOI:10.1093/europace/euu127delete
deleteOriginal
deleteShare
deleteSave
View PDF
Abstract

Abstract

En 中文
Aims Today's cardiac pacemakers are powered by batteries with limited energy capacity. As the battery's lifetime ends, the pacemaker needs to be replaced. This surgical re-intervention is costly and bears the risk of complications. Thus, a pace-maker without primary batteries is desirable. The goal of this study was to test whether transcutaneous solar light could power a pacemaker. Methods and results We used a three-step approach to investigate the feasibility of sunlight-powered cardiac pacing. First, the harvestable power was estimated. Theoretically, a subcutaneously implanted 1 cm(2) solar module may harvest similar to 2500 mu W from sunlight (3 mm implantation depth). Secondly, ex vivo measurements were performed with solar cells placed under pig skin flaps exposed to a solar simulator and real sunlight. Ex vivo measurements under real sunlight resulted in a median output power of 4941 mu W/cm(2) [interquartile range (IQR) 3767-5598 mu W/cm(2), median skin flap thickness 3.0 mm (IQR 2.7-3.3 mm)]. The outputpower strongly depended on implantation depth (rho(Spearman) = -0.86, P < 0.001). Finally, a batteryless single-chamber pacemaker powered by a 3.24 cm(2) solar module was implanted in vivo in a pig to measure output power and to pace. In vivo measurements showed a median output power of >3500 mu W/cm(2) (skin flap thickness 2.8-3.84 mm). Successful batteryless VVI pacing using a subcutaneously implanted solar module was performed. Conclusion Based on our results, we estimate that a few minutes of direct sunlight (irradiating an implanted solar module) allow powering a pacemaker for 24 h using a suitable energy storage. Thus, powering a pacemaker by sunlight is feasible and may be an alternative energy supply for tomorrow's pacemakers.
Keywords:
Pacemaker
Pacing
Batteryless pacemaker
Energy harvesting
Solar pacemaker
Electrophysiology
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

E
Europace
IF:
7.4
Papers:
7.7K
Citations:
1.6W

Organization

U
University of Bern
Scholars:
3.9W
Papers: 3.1W
Citations: 4.8W