Design considerations for piezocomposite materials for electrical stimulation in medical implants.

Ember Krech, Evan Haas, Grace Tideman, Bonnie Reinsch, Elizabeth Friis
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引用次数: 1

Abstract

Incidence of non-union following long bone fracture fixation and spinal fusion procedures is increasing, and very costly for patients and the medical system. Direct current (DC) electrical stimulation has shown success as an adjunct therapy to stimulate bone healing and increase surgery success rates, though drawbacks of current devices and implantable battery packs have limited widespread use. Energy harvesting utilising piezoelectric materials has been widely studied for powering devices without a battery, and a preclinical animal study has shown efficacy of a piezocomposite spinal fusion implant resulting in faster, more robust fusion. Most piezoelectric energy harvesters operate most effectively at high frequencies, limiting power generation from loads experienced by orthopaedic implants during human motion. This work characterises the efficient power generation capability of a novel composite piezoelectric material under simulated walking loads. Building on compliant layer adaptive composite stacks (CLACS), the power generation of mixed-mode CLACS (MMCLACS) is defined. Utilising poling direction to capitalise on in-plane strain generation due to compliant layer expansion, MMCLACS significantly increased power output compared to a standard piezo stack. The combination of radial and through-thickness poled piezoelectric elements within a stack to create MMCLACS significantly increases power generation under low-frequency dynamic loads. This technology can be adapted to a variety of architectures and assembled as a load-bearing energy harvester within current implants. MMCLACS integrated with implants would provide enough power to deliver bone healing electrical stimulation directly to the fusion site, decreasing non-union rates, and also could provide quantitative assessment of healing progression through load sensing.

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医用植入物电刺激用压电复合材料的设计考虑。
长骨骨折固定和脊柱融合术后不愈合的发生率正在增加,并且对患者和医疗系统来说非常昂贵。直流电刺激(DC)作为一种辅助疗法已经显示出成功,可以刺激骨愈合和提高手术成功率,尽管目前设备和可植入电池组的缺点限制了广泛使用。利用压电材料的能量收集已经被广泛研究,用于为没有电池的设备供电,一项临床前动物研究表明,压电复合材料脊柱融合植入物的效果更快,更坚固。大多数压电能量收集器在高频率下工作最有效,限制了矫形植入物在人体运动时所经历的负载产生的能量。这项工作表征了一种新型复合压电材料在模拟行走载荷下的高效发电能力。在柔性层自适应复合堆栈(CLACS)的基础上,定义了混合模式CLACS (MMCLACS)的发电方法。MMCLACS利用极化方向来利用由于柔性层扩展而产生的平面内应变,与标准压电堆叠相比,显着提高了功率输出。将径向和透厚极化压电元件组合在一起形成MMCLACS,可以显著提高低频动载荷下的发电量。该技术可以适应各种架构,并在当前植入物中组装为承载能量收集器。与植入物集成的MMCLACS将提供足够的功率,直接向融合部位提供骨愈合电刺激,降低骨不愈合率,还可以通过负载传感对愈合进展进行定量评估。
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来源期刊
Journal of Medical Engineering and Technology
Journal of Medical Engineering and Technology Engineering-Biomedical Engineering
CiteScore
4.60
自引率
0.00%
发文量
77
期刊介绍: The Journal of Medical Engineering & Technology is an international, independent, multidisciplinary, bimonthly journal promoting an understanding of the physiological processes underlying disease processes and the appropriate application of technology. Features include authoritative review papers, the reporting of original research, and evaluation reports on new and existing techniques and devices. Each issue of the journal contains a comprehensive information service which provides news relevant to the world of medical technology, details of new products, book reviews, and selected contents of related journals.
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