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金活性钎料合金实现的用于生物医学植入物的密封金刚石胶囊。

Hermetic diamond capsules for biomedical implants enabled by gold active braze alloys.

机构信息

School of Physics, The University of Melbourne, Victoria 3010, Australia.

School of Aerospace, Mechanical and Manufacturing Engineering, RMIT University, Victoria 3001, Australia.

出版信息

Biomaterials. 2015;53:464-74. doi: 10.1016/j.biomaterials.2015.02.103. Epub 2015 Mar 20.

Abstract

As the field of biomedical implants matures the functionality of implants is rapidly increasing. In the field of neural prostheses this is particularly apparent as researchers strive to build devices that interact with highly complex neural systems such as vision, hearing, touch and movement. A retinal implant, for example, is a highly complex device and the surgery, training and rehabilitation requirements involved in deploying such devices are extensive. Ideally, such devices will be implanted only once and will continue to function effectively for the lifetime of the patient. The first and most pivotal factor that determines device longevity is the encapsulation that separates the sensitive electronics of the device from the biological environment. This paper describes the realisation of a free standing device encapsulation made from diamond, the most impervious, long lasting and biochemically inert material known. A process of laser micro-machining and brazing is described detailing the fabrication of hermetic electrical feedthroughs and laser weldable seams using a 96.4% gold active braze alloy, another material renowned for biochemical longevity. Accelerated ageing of the braze alloy, feedthroughs and hermetic capsules yielded no evidence of corrosion and no loss of hermeticity. Samples of the gold braze implanted for 15 weeks, in vivo, caused minimal histopathological reaction and results were comparable to those obtained from medical grade silicone controls. The work described represents a first account of a free standing, fully functional hermetic diamond encapsulation for biomedical implants, enabled by gold active alloy brazing and laser micro-machining.

摘要

随着生物医学植入物领域的成熟,植入物的功能迅速增加。在神经假体领域,这一点尤为明显,因为研究人员正在努力制造能够与视觉、听觉、触觉和运动等高度复杂的神经系统相互作用的设备。例如,视网膜植入物是一种高度复杂的设备,而部署此类设备所涉及的手术、训练和康复要求非常广泛。理想情况下,此类设备只需植入一次,并能在患者的整个生命周期内持续有效地发挥作用。决定设备寿命的第一个也是最重要的因素是封装,它将设备的敏感电子元件与生物环境隔离开来。本文介绍了一种由金刚石制成的独立设备封装的实现,金刚石是已知最不透水、最持久和生化惰性的材料。描述了一种激光微加工和钎焊工艺,详细介绍了使用 96.4%金活性钎料合金制造密封电馈通和激光可焊接焊缝的过程,这种合金也是一种以生化寿命长而闻名的材料。钎料合金、馈通和密封胶囊的加速老化没有腐蚀证据,也没有失去密封性能。在体内植入 15 周的金钎料样本引起的组织病理学反应最小,结果与医用级硅酮对照物获得的结果相当。所描述的工作首次报道了一种用于生物医学植入物的独立、全功能密封金刚石封装,这得益于金活性合金钎焊和激光微加工。

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