Articles with "implantable electronics" as a keyword



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Transient Implantable Electronics for Postsurgery Preventive Medicine

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Published in 2024 at "Advanced Functional Materials"

DOI: 10.1002/adfm.202413324

Abstract: The field of postoperative care has seen a remarkable shift toward the utilization of electronic implantable devices, including sensors, biosensors, stimulators, and drug delivery systems, all designed with a biodegradable form factor and wireless data/power… read more here.

Keywords: electronics postsurgery; postsurgery preventive; implantable electronics; preventive medicine ... See more keywords
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Conjugated Polymer for Implantable Electronics toward Clinical Application.

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Published in 2021 at "Advanced healthcare materials"

DOI: 10.1002/adhm.202001916

Abstract: Owing to their excellent mechanical flexibility, mixed-conducting electrical property, and extraordinary chemical turnability, conjugated polymers have been demonstrated to be an ideal bioelectronic interface to deliver therapeutic effect in many different chronic diseases. This review… read more here.

Keywords: medicine; implantable electronics; conjugated polymers; conjugated polymer ... See more keywords
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Biodegradable Implantable Electronics with Wireless Technology for Real-Time Clinical Applications.

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Published in 2025 at "Advanced healthcare materials"

DOI: 10.1002/adhm.202503424

Abstract: Wireless biodegradable electronics offer a transformative approach to transient biomedical applications by combining fully implantable, resorbable architectures with untethered communication and power delivery. These systems address key limitations of conventional implants, including infection risk, foreign… read more here.

Keywords: clinical applications; real time; electronics wireless; implantable electronics ... See more keywords

Topographical Patterning of Cell‐Repellent Interfaces for Immune‐Stealth Implantable Electronics via Multiphoton Ablation Lithography

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Published in 2025 at "Advanced Science"

DOI: 10.1002/advs.202506482

Abstract: Stable and reliable operation of implantable electronics must ensure both high‐quality electrical performance and chronic biocompatibility. Here, immune‐stealth implantable electronics fabricated by multiphoton ablation lithography are introduced. The cell‐repellent interface, consisting of micro‐grooves and nano‐islands,… read more here.

Keywords: cell repellent; stealth implantable; cell; implantable electronics ... See more keywords

Near-infrared irradiation induced remote and efficient self-healable triboelectric nanogenerator for potential implantable electronics

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Published in 2018 at "Nano Energy"

DOI: 10.1016/j.nanoen.2018.06.060

Abstract: Abstract The rapid advancement of implantable electronics makes exploring a novel power source urgent. Self-healable triboelectric nanogenerator (SH-TENG) is an emerging and promising candidate based on the combination of triboelectric effect, electrostatic induction and self-healing… read more here.

Keywords: healable triboelectric; irradiation; potential implantable; implantable electronics ... See more keywords

Electrostatic Assembly of Laminated Transparent Piezoelectrets for Epidermal and Implantable Electronics

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Published in 2021 at "Nano Energy"

DOI: 10.1016/j.nanoen.2021.106450

Abstract: Abstract Piezoelectric polymers hold physical properties, such as high mechanical flexibility and smaller acoustical impedance, that piezoelectric ceramics do not have. Nevertheless, owing to the piezoelectricity originates from the crystalline region, it is still a… read more here.

Keywords: epidermal implantable; laminated transparent; transparent piezoelectrets; electrostatic assembly ... See more keywords