Functional Encapsulating Structure for Wireless and Immediate Monitoring of the Fluid Penetration. (23rd April 2022)
- Record Type:
- Journal Article
- Title:
- Functional Encapsulating Structure for Wireless and Immediate Monitoring of the Fluid Penetration. (23rd April 2022)
- Main Title:
- Functional Encapsulating Structure for Wireless and Immediate Monitoring of the Fluid Penetration
- Authors:
- Lim, Daseul
Hong, Insic
Park, Sang Uk
Chae, Jeong Woo
Lee, Seunggon
Baac, Hyoung Won
Shin, Changhwan
Lee, Jungheon
Roh, Yeonwook
Im, Chaewan
Park, Yoonseok
Lee, Geumbee
Kim, Uikyum
Koh, Je‐Sung
Kang, Daeshik
Han, Seungyong
Won, Sang Min - Abstract:
- Abstract: With the fast‐paced development of biomedical electronics, monitoring physiological processes have become ubiquitous throughout the field of implantable devices. Nevertheless, inherent challenges remain extant when long‐term applications are concerned. For the stable and reliable function of these devices, hermetic and biocompatible encapsulation is of paramount importance; however, extrinsic defects and intrinsic swelling properties of the encapsulating layer present the key limitation to ideal barrier performance. Thus, the ability to monitor biofluid penetration and predict the device's functional lifespan is necessary for safe and stable operation within the body. This paper presents the functional encapsulation structure that quantitatively measures the diffusion of fluids into the encapsulation layer. The hydrolysis of Magnesium (Mg) electrodes underneath the encapsulating material shows the capability to wirelessly monitor the water penetration rate and the presence of defects, such as pinholes and cracks, in the encapsulating material. The experiments conducted throughout this paper analyze the Mg thickness and geometry of the antenna to optimize the device's susceptivity to water penetration when submerged in aqueous environments. The facile fabrication process and the compatibility with prevailing implantable electronics further substantiate the device's usability in diverse applications where chronic implants are necessary for monitoring disease orAbstract: With the fast‐paced development of biomedical electronics, monitoring physiological processes have become ubiquitous throughout the field of implantable devices. Nevertheless, inherent challenges remain extant when long‐term applications are concerned. For the stable and reliable function of these devices, hermetic and biocompatible encapsulation is of paramount importance; however, extrinsic defects and intrinsic swelling properties of the encapsulating layer present the key limitation to ideal barrier performance. Thus, the ability to monitor biofluid penetration and predict the device's functional lifespan is necessary for safe and stable operation within the body. This paper presents the functional encapsulation structure that quantitatively measures the diffusion of fluids into the encapsulation layer. The hydrolysis of Magnesium (Mg) electrodes underneath the encapsulating material shows the capability to wirelessly monitor the water penetration rate and the presence of defects, such as pinholes and cracks, in the encapsulating material. The experiments conducted throughout this paper analyze the Mg thickness and geometry of the antenna to optimize the device's susceptivity to water penetration when submerged in aqueous environments. The facile fabrication process and the compatibility with prevailing implantable electronics further substantiate the device's usability in diverse applications where chronic implants are necessary for monitoring disease or administering required treatments. Abstract : Here, the functional encapsulating structure it is proposed that quantitatively measures the diffusion of fluids into the encapsulating barrier used in implantable electronics. The hydrolysis of magnesium electrode underneath the encapsulating barrier shows the capability of wireless monitoring of the water and/or biofluid penetration rate and the presence of defects, such as pinholes or cracks, in the encapsulating material. … (more)
- Is Part Of:
- Advanced functional materials. Volume 32:Number 31(2022)
- Journal:
- Advanced functional materials
- Issue:
- Volume 32:Number 31(2022)
- Issue Display:
- Volume 32, Issue 31 (2022)
- Year:
- 2022
- Volume:
- 32
- Issue:
- 31
- Issue Sort Value:
- 2022-0032-0031-0000
- Page Start:
- n/a
- Page End:
- n/a
- Publication Date:
- 2022-04-23
- Subjects:
- bio‐fluid transmission rate measurement -- flexible bio‐integrated electronic systems -- magnesium sensors -- organic thin film encapsulation -- pinhole detection -- surface scattering effect
Materials -- Periodicals
Chemical vapor deposition -- Periodicals
620.11 - Journal URLs:
- http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1616-3028 ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/adfm.202201854 ↗
- Languages:
- English
- ISSNs:
- 1616-301X
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 0696.853900
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 22798.xml