On the longevity and inherent hermeticity of silicon-ICs
Evaluation of bare-die and PDMS-coated ICs after accelerated aging and implantation studies
K. Nanbakhsh (TU Delft - Bio-Electronics)
Ahmad Shah Idil (Mint Neurotechnologies Ltd, UK Dementia Research Institute, University College London, Imperial College London)
Callum Lamont (University College London)
Csaba Dücső (HUN-REN Centre for Energy Research)
Can Akgün (TU Delft - Bio-Electronics, Nikhef)
Domonkos Horvath (Pázmány Péter Katolikus Egyetem, HUN-REN Research Centre for Natural Sciences)
Kinga Tóth (HUN-REN Research Centre for Natural Sciences, Pázmány Péter Katolikus Egyetem)
Wouter Serdijn (Erasmus MC, TU Delft - Bio-Electronics)
Vasso Giagka (TU Delft - Bio-Electronics, Fraunhofer Institute for Reliability and Microintegration IZM)
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Abstract
Silicon integrated circuits (ICs) are central to the next-generation miniature active neural implants, whether packaged in soft polymers for flexible bioelectronics or implanted as bare die for neural probes. These emerging applications bring the IC closer to the corrosive body environment, raising reliability concerns, particularly for chronic use. Here, we evaluate the inherent hermeticity of bare die ICs, and examine the potential of polydimethylsiloxane (PDMS), a moisture-permeable elastomer, as a standalone encapsulation material. For this aim, the electrical and material performance of ICs sourced from two foundries was evaluated through one-year accelerated in vitro and in vivo studies. ICs featured custom-designed test structures and were partially PDMS coated, creating two regions on each chip, uncoated “bare die” and “PDMS-coated”. During the accelerated in vitro study, ICs were electrically biased and periodically monitored. Results revealed stable electrical performance, indicating the unaffected operation of ICs even when directly exposed to physiological fluids. Despite this, material analysis revealed IC degradation in the bare regions. PDMS-coated regions, however, revealed limited degradation, making PDMS a suitable IC encapsulant for years-long implantation. Based on the new insights, guidelines are proposed that may enhance the longevity of implantable ICs, broadening their applications in the biomedical field.