Energetic Control of Redox-Active Polymers toward Safe Organic Bioelectronic Materials.
Type
ArticleAuthors
Giovannitti, Alexander
Rashid, Reem B
Thiburce, Quentin
Paulsen, Bryan D
Cendra, Camila
Thorley, Karl
Moia, Davide
Mefford, J Tyler
Hanifi, David
Weiyuan, Du
Moser, Maximilian
Salleo, Alberto
Nelson, Jenny
McCulloch, Iain
Rivnay, Jonathan
Date
2020-03-03Online Publication Date
2020-03-03Print Publication Date
2020-04Embargo End Date
2021-03-04Submitted Date
2019-12-09Permanent link to this record
http://hdl.handle.net/10754/661930
Metadata
Show full item recordAbstract
Avoiding faradaic side reactions during the operation of electrochemical devices is important to enhance the device stability, to achieve low power consumption, and to prevent the formation of reactive side-products. This is particularly important for bioelectronic devices, which are designed to operate in biological systems. While redox-active materials based on conducting and semiconducting polymers represent an exciting class of materials for bioelectronic devices, they are susceptible to electrochemical side-reactions with molecular oxygen during device operation. Here, electrochemical side reactions with molecular oxygen are shown to occur during organic electrochemical transistor (OECT) operation using high-performance, state-of-the-art OECT materials. Depending on the choice of the active material, such reactions yield hydrogen peroxide (H2 O2 ), a reactive side-product, which may be harmful to the local biological environment and may also accelerate device degradation. A design strategy is reported for the development of redox-active organic semiconductors based on donor-acceptor copolymers that prevents the formation of H2 O2 during device operation. This study elucidates the previously overlooked side-reactions between redox-active conjugated polymers and molecular oxygen in electrochemical devices for bioelectronics, which is critical for the operation of electrolyte-gated devices in application-relevant environments.Citation
Giovannitti, A., Rashid, R. B., Thiburce, Q., Paulsen, B. D., Cendra, C., Thorley, K., … Rivnay, J. (2020). Energetic Control of Redox-Active Polymers toward Safe Organic Bioelectronic Materials. Advanced Materials, 1908047. doi:10.1002/adma.201908047Publisher
WileyJournal
Advanced MaterialsAdditional Links
https://onlinelibrary.wiley.com/doi/abs/10.1002/adma.201908047ae974a485f413a2113503eed53cd6c53
10.1002/adma.201908047