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  4. Impact of Non-Accelerated Aging on the Properties of Parylene C
 
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2022
Journal Article
Title

Impact of Non-Accelerated Aging on the Properties of Parylene C

Abstract
The polymer Parylene combines a variety of excellent properties and, hence, is an object of intensive research for packaging applications, such as the direct encapsulation of medical implants. Moreover, in the past years, an increasing interest for establishing new applications for Parylene is observed. These include the usage of Parylene as a flexible substrate, a dielectric, or a material for MEMS, e.g., a bonding adhesive. The increasing importance of Parylene raises questions regarding the long-term reliability and aging of Parylene as well as the impact of the aging on the Parylene properties. Within this paper, we present the first investigations on non-accelerated Parylene C aging for a period of about five years. Doing so, free-standing Parylene membranes were fabricated to investigate the barrier properties, the chemical stability, as well as the optical properties of Parylene in dependence on different post-treatments to the polymer. These properties were found to be excellent and with only a minor age-related impact. Additionally, the mechanical properties, i.e., the Young’s modulus and the hardness, were investigated via nano-indentation over the same period of time. For both mechanical properties only, minor changes were observed. The results prove that Parylene C is a highly reliable polymer for applications that needs a high long-term stability.
Author(s)
Selbmann, Franz  
Fraunhofer-Institut für Elektronische Nanosysteme ENAS  
Scherf, Christina
Fraunhofer-Institut für Elektronische Nanosysteme ENAS  
Langenickel, Joern
Roscher, Frank  
Fraunhofer-Institut für Elektronische Nanosysteme ENAS  
Wiemer, Maik  
Fraunhofer-Institut für Elektronische Nanosysteme ENAS  
Kuhn, Harald  
Fraunhofer-Institut für Elektronische Nanosysteme ENAS  
Joseph, Yvonne
Journal
Polymers. Online resource  
Open Access
DOI
10.3390/polym14235246
Additional link
Full text
Language
English
Fraunhofer-Institut für Elektronische Nanosysteme ENAS  
Keyword(s)
  • aging

  • barrier properties

  • encapsulation

  • FTIR

  • mechanical properties

  • MEMS

  • nano-indentation

  • packaging

  • Parylene

  • stability

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