Title :
Three dimensional transformation of Parylene thin film structures via thermoforming
Author :
Kim, B.J. ; Chen, Bing ; Gupta, Madhu ; Meng, Ellis
Author_Institution :
Dept. of Biomed. Eng., Univ. of Southern California, Los Angeles, CA, USA
Abstract :
Non-planar, three dimensional structures, not possible with conventional microfabrication processes, were achieved using post-fabrication thermal annealing of thin film Parylene-C structures facilitated by a mold (“thermoforming”). We demonstrate thermoforming of Parylene-Parylene and Parylene-metal-Parylene (PMP) structures for increased structural and mechanical functionality such as strain relief, formation of open-lumen sheath structures, and conformation-matching of curved surfaces that broaden applications for Parylene MEMS. Characterization of the material and mechanical properties as a function of thermoforming temperature is also presented. Thermoformed Parylene consistently retained bulk/surface chemical material properties following the treatment regardless of temperature, and thermoforming at higher temperatures increased structural stiffness, which is attributed to increased crystallinity of the polymer. By varying the thermoforming process parameters, the final shaped structure can be mechanically and structurally tuned for broad range of applications, most notably, structured implantable neural interfaces with integrated channels for tissue ingrowth and improved integration.
Keywords :
annealing; microfabrication; micromechanical devices; thermoforming; thin films; PMP structures; Parylene MEMS; Parylene-C thin film structures; Parylene-metal-Parylene structures; bulk-surface chemical material properties; curved surface conformation-matching; integrated channels; material characterization; mechanical functionality; mechanical properties; nonplanar three-dimensional structures; open-lumen sheath structure formation; polymer crystallinity; post-fabrication thermal annealing; strain relief; structural functionality; structural stiffness; structured implantable neural interfaces; thermoformed Parylene; thermoforming process parameters; thermoforming temperature; three-dimensional transformation; tissue ingrowth; Chemicals; Films; Surface treatment; Temperature; Temperature measurement; Thermoforming;
Conference_Titel :
Micro Electro Mechanical Systems (MEMS), 2013 IEEE 26th International Conference on
Conference_Location :
Taipei
Print_ISBN :
978-1-4673-5654-1
DOI :
10.1109/MEMSYS.2013.6474247