| Literature DB >> 36080750 |
Sébastien Buchwalder1,2, Aurelio Borzì3, Juan J Diaz Leon4, Florian Bourgeois5, Cléo Nicolier1, Sylvain Nicolay4, Antonia Neels3, Olaf Zywitzki6, Andreas Hogg5, Jürgen Burger1.
Abstract
Biocompatible polymer films demonstrating excellent thermal stability are highly desirable for high-temperature (>250 °C) applications, especially in the bioelectronic encapsulation domain. Parylene, as an organic thin film, is a well-established polymer material exhibiting excellent barrier properties and is often the material of choice for biomedical applications. This work investigated the thermal impact on the bulk properties of four types of parylene films: parylene N, C, VT4, and AF4. The films, deposited using the standard Gorham process, were analyzed at varying annealing temperatures from room temperature up to 450 °C. Thermal properties were identified by differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA) methods, while X-ray diffraction (XRD) analysis showed the effect of high-temperature exposure on the structural properties. In addition to thermal and structural analysis, the barrier properties were measured through the helium transmission rate (HTR) and the water vapor transmission rate (WVTR). Fluorinated parylene films were confirmed to be exceptional materials for high-temperature applications. Parylene AF4 film, 25um thick, demonstrated excellent barrier performance after 300 °C exposure, with an HTR and a WVTR of 12.18 × 103 cm3 (STP) m-2 day-1 atm-1 and 6.6 g m-2 day-1, respectively.Entities:
Keywords: annealing; helium transmission rate (HTR); parylene; thermal stability; vapor phase deposition; water vapor transmission rate (WVTR)
Year: 2022 PMID: 36080750 PMCID: PMC9527014 DOI: 10.3390/polym14173677
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.967
Figure 1Chemical structure of parylene type N, C, VT4, and AF4.
Figure 2DSC analysis curves for each parylene type: (a–d) illustrate the first and second heating cycles and the cooling curves, respectively, for parylene N, VT4, C and AF4.
Figure 3Thermogravimetric analysis results of parylene type N, C, VT4, and AF4.
Figure 4Atomic-scale structural analysis performed at room temperature for each type of parylene: (a) the d-spacing (Å) as a function of the annealed temperatures; (b) the size of the crystalline domains (Å) as a function of the annealed temperatures.
Figure 5Permeation measurements: (a) helium transmission rate (HTR) and (b) water vapor transmission rate (WVTR) as a function of temperatures and for the different parylene types.