Department of Biomedical Engineering, Texas A&M University, College Station, TX, USA.
Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, IL, USA.
Nat Biomed Eng. 2019 Mar;3(3):194-205. doi: 10.1038/s41551-019-0347-x. Epub 2019 Feb 18.
Skin-interfaced medical devices are critically important for diagnosing disease, monitoring physiological health and establishing control interfaces with prosthetics, computer systems and wearable robotic devices. Skin-like epidermal electronic technologies can support these use cases in soft and ultrathin materials that conformally interface with the skin in a manner that is mechanically and thermally imperceptible. Nevertheless, schemes so far have limited the overall sizes of these devices to less than a few square centimetres. Here, we present materials, device structures, handling and mounting methods, and manufacturing approaches that enable epidermal electronic interfaces that are orders of magnitude larger than previously realized. As a proof-of-concept, we demonstrate devices for electrophysiological recordings that enable coverage of the full scalp and the full circumference of the forearm. Filamentary conductive architectures in open-network designs minimize radio frequency-induced eddy currents, forming the basis for structural and functional compatibility with magnetic resonance imaging. We demonstrate the use of the large-area interfaces for the multifunctional control of a transhumeral prosthesis by patients who have undergone targeted muscle-reinnervation surgery, in long-term electroencephalography, and in simultaneous electroencephalography and structural and functional magnetic resonance imaging.
皮肤界面医疗设备对于疾病诊断、生理健康监测以及建立与假肢、计算机系统和可穿戴机器人设备的控制接口至关重要。类似皮肤的表皮电子技术可以在柔软和超薄的材料中支持这些用例,这些材料以机械和热上不可察觉的方式与皮肤贴合。然而,迄今为止的方案将这些设备的整体尺寸限制在几平方厘米以下。在这里,我们提出了材料、器件结构、处理和安装方法以及制造方法,使表皮电子接口的尺寸比以前实现的要大几个数量级。作为概念验证,我们展示了用于电生理记录的设备,这些设备可以覆盖整个头皮和整个前臂周长。开放式网络设计中的丝状导电结构最大限度地减少了射频感应涡流,为与磁共振成像的结构和功能兼容性奠定了基础。我们展示了大面积接口在经过靶向肌肉再支配手术的患者中对手臂假肢的多功能控制、长期脑电图以及同时脑电图和结构功能磁共振成像中的应用。