Biodegradable Metallic Glass for Stretchable Transient Electronics

Authors
Bae, Jae-YoungGwak, Eun-JiHwang, Gyeong-SeokHwang, Hae WonLee, Dong-JuLee, Jong-SungJoo, Young-ChangSun, Jeong-YunJun, Sang HoOk, Myoung-RyulKim, Ju-YoungKang, Seung-Kyun
Issue Date
2021-05
Publisher
WILEY
Citation
ADVANCED SCIENCE, v.8, no.10
Abstract
Biodegradable electronics are disposable green devices whose constituents decompose into harmless byproducts, leaving no residual waste and minimally invasive medical implants requiring no removal surgery. Stretchable and flexible form factors are essential in biointegrated electronic applications for conformal integration with soft and expandable skins, tissues, and organs. Here a fully biodegradable MgZnCa metallic glass (MG) film is proposed for intrinsically stretchable electrodes with a high yield limit exploiting the advantages of amorphous phases with no crystalline defects. The irregular dissolution behavior of this amorphous alloy regarding electrical conductivity and morphology is investigated in aqueous solutions with different ion species. The MgZnCa MG nanofilm shows high elastic strain (approximate to 2.6% in the nano-tensile test) and offers enhanced stretchability (approximate to 115% when combined with serpentine geometry). The fatigue resistance in repeatable stretching also improves owing to the wide range of the elastic strain limit. Electronic components including the capacitor, inductor, diode, and transistor using the MgZnCa MG electrode support its integrability to transient electronic devices. The biodegradable triboelectric nanogenerator of MgZnCa MG operates stably over 50 000 cycles and its fatigue resistant applications in mechanical energy harvesting are verified. In vitro cell toxicity and in vivo inflammation tests demonstrate the biocompatibility in biointegrated use.
Keywords
amorphous alloys; biodegradable materials; metallic glass; stretchable electronics; transient electronics
ISSN
2198-3844
URI
https://pubs.kist.re.kr/handle/201004/117088
DOI
10.1002/advs.202004029
Appears in Collections:
KIST Article > 2021
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