基于粘合剂/低阻抗水凝胶纳米复合材料和高导电性弹性体纳米复合材料双面结构的软心脏贴片

IF 4 Q2 ENGINEERING, BIOMEDICAL
Jeeyoung Kim, Gi Doo Cha, Minsung Kim, Seung-Pyo Lee, Sung-Hyuk Sunwoo, Dae-Hyeong Kim
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引用次数: 0

摘要

软植入式多通道心脏电极阵列与心脏建立直接的单片接口,是先进心脏监测和电调制的关键组成部分。该领域的一个重大技术进步是可拉伸导电纳米复合材料的发展,通过金属纳米材料和弹性聚合物的集成制造,旨在实现高导电性和机械弹性。尽管取得了这些进展,但需要在材料性能和设备设计方面取得进一步进展,以确保无缝、可靠、生物相容性和高保真的心脏接口。本文报道了一种基于粘合剂/低阻抗水凝胶纳米复合材料和高导电弹性体纳米复合材料的双面结构的软多通道心脏贴片的开发。双面设计有利于实现心脏贴片与其他组织/器官之间的整合。水凝胶纳米复合层位于心外膜一侧,可稳定粘附目标心脏组织,实现与心脏的低阻抗生物相容性界面,而弹性体纳米复合层位于另一侧,可提供高导电性,便于电生理信号传递,并且具有低摩擦表面,可最大限度地减少与周围组织的不必要相互作用。这种双面贴片的有效性在涉及各种心脏信号记录和机电调制演示的多种应用中得到了展示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Soft Cardiac Patch Using a Bifacial Architecture of Adhesive/Low-Impedance Hydrogel Nanocomposites and Highly Conductive Elastomer Nanocomposites

Soft Cardiac Patch Using a Bifacial Architecture of Adhesive/Low-Impedance Hydrogel Nanocomposites and Highly Conductive Elastomer Nanocomposites

Soft implantable multichannel cardiac electrode arrays that establish direct monolithic interfaces with the heart are key components for advanced cardiac monitoring and electrical modulation. A significant technological advancement in this area is the development of stretchable conductive nanocomposites, fabricated through the integration of metallic nanomaterials and elastic polymers, aimed at achieving both high electrical conductivity and mechanical elasticity. Despite these advances, further progress in material performance and device designs is required to ensure seamless, reliable, biocompatible, and high-fidelity cardiac interfacing. Herein, the development of a soft multichannel cardiac patch based on a bifacial architecture of adhesive/low-impedance hydrogel nanocomposites and highly conductive elastomer nanocomposites is reported. The bifacial design facilitates the integration of the cardiac patch between the heart and other tissues/organs can be achieved. The hydrogel nanocomposite layer, positioned on the epicardial side, provides stable adhesion to the target cardiac tissue and enables low-impedance biocompatible interfacing with the heart, while the elastomer nanocomposite layer, positioned on the opposite side, offers high electrical conductivity for facile electrophysiological signal transfer and a low-friction surface minimizing unwanted interactions with surrounding tissues. The effectiveness of this bifacial patch in multiple applications involving various cardiac signal recordings and electromechanical modulation demonstrations is showcased.

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来源期刊
Advanced Nanobiomed Research
Advanced Nanobiomed Research nanomedicine, bioengineering and biomaterials-
CiteScore
5.00
自引率
5.90%
发文量
87
审稿时长
21 weeks
期刊介绍: Advanced NanoBiomed Research will provide an Open Access home for cutting-edge nanomedicine, bioengineering and biomaterials research aimed at improving human health. The journal will capture a broad spectrum of research from increasingly multi- and interdisciplinary fields of the traditional areas of biomedicine, bioengineering and health-related materials science as well as precision and personalized medicine, drug delivery, and artificial intelligence-driven health science. The scope of Advanced NanoBiomed Research will cover the following key subject areas: ▪ Nanomedicine and nanotechnology, with applications in drug and gene delivery, diagnostics, theranostics, photothermal and photodynamic therapy and multimodal imaging. ▪ Biomaterials, including hydrogels, 2D materials, biopolymers, composites, biodegradable materials, biohybrids and biomimetics (such as artificial cells, exosomes and extracellular vesicles), as well as all organic and inorganic materials for biomedical applications. ▪ Biointerfaces, such as anti-microbial surfaces and coatings, as well as interfaces for cellular engineering, immunoengineering and 3D cell culture. ▪ Biofabrication including (bio)inks and technologies, towards generation of functional tissues and organs. ▪ Tissue engineering and regenerative medicine, including scaffolds and scaffold-free approaches, for bone, ligament, muscle, skin, neural, cardiac tissue engineering and tissue vascularization. ▪ Devices for healthcare applications, disease modelling and treatment, such as diagnostics, lab-on-a-chip, organs-on-a-chip, bioMEMS, bioelectronics, wearables, actuators, soft robotics, and intelligent drug delivery systems. with a strong focus on applications of these fields, from bench-to-bedside, for treatment of all diseases and disorders, such as infectious, autoimmune, cardiovascular and metabolic diseases, neurological disorders and cancer; including pharmacology and toxicology studies.
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