Flexible and biocompatible high-performance solid-state micro-battery for implantable orthodontic system

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作者
Arwa T. Kutbee
Rabab R. Bahabry
Kholod O. Alamoudi
Mohamed T. Ghoneim
Marlon D. Cordero
Amani S. Almuslem
Abdurrahman Gumus
Elhadj M. Diallo
Joanna M. Nassar
Aftab M. Hussain
Niveen M. Khashab
Muhammad M. Hussain
机构
[1] King Abdullah University of Science and Technology (KAUST),Integrated Nanotechnology Lab and Integrated Disruptive Electronic Applications (IDEA) Lab, Material Science and Engineering, Physical Science and Engineering Division
[2] King Abdullah University of Science and Technology (KAUST),Khashab Research Group, Chemical Science, Physical Science and Engineering Division
[3] King Abdullah University of Science and Technology (KAUST),Integrated Nanotechnology Lab and Integrated Disruptive Electronic Applications (IDEA) Lab, Electrical Engineering, Computer Electrical and Mathematical Sciences and Engineering Division
[4] King Abdullah University of Science and Technology (KAUST),Integrated Nanotechnology Lab and Integrated Disruptive Electronic Applications (IDEA) Lab, Mechanical Engineering, Physical Science and Engineering Division
[5] King Abdullah University of Science and Technology (KAUST),KAUST Nanofabrication Core Lab
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摘要
To augment the quality of our life, fully compliant personalized advanced health-care electronic system is pivotal. One of the major requirements to implement such systems is a physically flexible high-performance biocompatible energy storage (battery). However, the status-quo options do not match all of these attributes simultaneously and we also lack in an effective integration strategy to integrate them in complex architecture such as orthodontic domain in human body. Here we show, a physically complaint lithium-ion micro-battery (236 μg) with an unprecedented volumetric energy (the ratio of energy to device geometrical size) of 200 mWh/cm3 after 120 cycles of continuous operation. Our results of 90% viability test confirmed the battery’s biocompatibility. We also show seamless integration of the developed battery in an optoelectronic system embedded in a three-dimensional printed smart dental brace. We foresee the resultant orthodontic system as a personalized advanced health-care application, which could serve in faster bone regeneration and enhanced enamel health-care protection and subsequently reducing the overall health-care cost.
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