Batteries for automatic implantable cardiac defibrillators (AICDs) typically need to be replaced every 5-7 years, whereas the average post-implantation longevity of AICD recipients with congestive heart failure (CHF) has increased to over 15 years. This mismatch poses a significant and ever-growing clinical and economic burden, since replacing the battery requires surgical intervention. Reducing the number of replacement surgeries will both prevent morbidity and lower costs. In the U.S. alone, AICD battery replacement costs billions of dollars each year, and reducing or eliminating these costs is clearly an imperative with health care reform. An innovative solution to increase AICD battery lifetimes is to harness the robust intrinsic energy of the heart and convert it to electrical power. Few successful studies on implantable energy generators have been reported however, and current piezoelectric generators are unsuitable for implantable applications due to low energy density or poor biocompatibility. In our preliminary studies, we have demonstrated that increasing the porosity of poly(vinylidene fluoride) (PVDF) structures increases their compressibility, resulting in higher piezoelectric efficiency. The hypothesis of this proposal is that flexible and conformable porous PVDF polymer films embedded inside AICD leads, or as stand-alone leads, can convert the mechanical motion of the heart into electrical energy by exploiting the high piezoelectricity efficiency of the PVDF film. In our specific aims, we will first develop flexible micro-power generators made of porous PVDF layers that can be interfaced with current AICD lead technology. Secondly, we will design computational models for porous PVDF structures and cardiac energy harvesting devices to allow for optimal design and power efficiency. In parallel, two types of bistable structures fabricated through strain engineering will be explored as energy harvesting devices, and their performance will be optimized using computer simulations. Thirdly, in vitro quantification and testing of the micro-power generator in an animal model of canine will be carried out to evaluate the clinical potential of our approach. Our research will support the development of a broad class of tunable porous nanomaterial networks capable of high efficient energy conversion, with potentially far-reaching applications in biomedical engineering.

Public Health Relevance

Energy consumption and battery replacement are among the most challenging problems in the field of permanently implanted biomedical devices. Current piezoelectric generators are not suitable for implantable applications due to their low energy density or poor biocompatibility. The goal of this project is to design, characterize, optimize and test flexible porous polymer film power generators that convert cardiac motion into electrical power to recharge automatic implantable cardiac defibrillators (AICD).

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL137157-02
Application #
9355648
Study Section
Special Emphasis Panel (ZRG1-BCMB-A (51)R)
Program Officer
Baldwin, Tim
Project Start
2016-09-20
Project End
2021-05-31
Budget Start
2017-06-01
Budget End
2018-05-31
Support Year
2
Fiscal Year
2017
Total Cost
$394,101
Indirect Cost
$140,689
Name
Dartmouth College
Department
Type
Schools of Engineering
DUNS #
041027822
City
Hanover
State
NH
Country
United States
Zip Code
03755
Hao, Nanjing; Nie, Yuan; Shen, Ting et al. (2018) Microfluidics-enabled rational design of immunomagnetic nanomaterials and their shape effect on liquid biopsy. Lab Chip 18:1997-2002
Hao, Nanjing; Nie, Yuan; Closson, Andrew B et al. (2018) Microfluidic synthesis and on-chip enrichment application of two-dimensional hollow sandwich-like mesoporous silica nanosheet with water ripple-like surface. J Colloid Interface Sci 539:87-94
Hao, Nanjing; Nie, Yuan; Tadimety, Amogha et al. (2018) Microfluidics-enabled rapid manufacturing of hierarchical silica-magnetic microflower toward enhanced circulating tumor cell screening. Biomater Sci 6:3121-3125
Xu, Zhe; Liu, Yin; Dong, Lin et al. (2018) Tunable Buckled Beams with Mesoporous PVDF-TrFE/SWCNT Composite Film for Energy Harvesting. ACS Appl Mater Interfaces 10:33516-33522
Hao, Nanjing; Nie, Yuan; Zhang, John X J (2018) Biomimetic hierarchical walnut kernel-like and erythrocyte-like mesoporous silica nanomaterials: controllable synthesis and versatile applications. Microporous Mesoporous Mater 261:144-149
Tadimety, Amogha; Closson, Andrew; Li, Cathy et al. (2018) Advances in liquid biopsy on-chip for cancer management: Technologies, biomarkers, and clinical analysis. Crit Rev Clin Lab Sci 55:140-162
Hu, N; Han, X; Huang, S et al. (2017) Edge effect of strained bilayer nanofilms for tunable multistability and actuation. Nanoscale 9:2958-2962
Nie, Yuan; Hao, Nanjing; Zhang, John X J (2017) Ultrafast Synthesis of Multifunctional Submicrometer Hollow Silica Spheres in Microfluidic Spiral Channels. Sci Rep 7:12616
Chorsi, Hamid T; Zhu, Ying; Zhang, John X J (2017) Patterned Plasmonic Surfaces-Theory, Fabrication, and Applications in Biosensing. J Microelectromech Syst 26:718-739