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Abrahamsson, T., Ek, F., Cornuéjols, R., Byun, D., Savvakis, M., Bruschi, C., . . . Strakosas, X. (2026). Visible-Light-Driven Aqueous Polymerization Enables in Situ Formation of Biocompatible, High-Performance Organic Mixed Conductors for Bioelectronics. Angewandte Chemie International Edition, 65(2), Article ID e17897.
Open this publication in new window or tab >>Visible-Light-Driven Aqueous Polymerization Enables in Situ Formation of Biocompatible, High-Performance Organic Mixed Conductors for Bioelectronics
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2026 (English)In: Angewandte Chemie International Edition, ISSN 1433-7851, E-ISSN 1521-3773, Vol. 65, no 2, article id e17897Article in journal (Refereed) Published
Abstract [en]

Polymer-based organic mixed ion-electron conductors (OMIECs) are a class of materials offering unique coupled dual charge transport characteristics along with appealing properties including mechanical softness, biocompatibility, tunability, volumetric capacitance, and stability. These features have been exploited in devices including organic electrochemical transistors (OECTs), neuromorphic computing, energy storage, sensors, neural electrodes, and actuators. Conventionally, OMIEC polymers are prepared through chemical, vapor-phase, electrochemical, or enzymatic polymerization, typically relying on oxidants, metal catalysts, and/or organic solvents, significantly limiting their scalability, sustainability, and biocompatibility. Here, we introduce an initiator-free, visible-light-induced polymerization of water-soluble conducting polymer precursors, enabling facile formation of high-performance and inherently biocompatible OMIECs. This novel approach allows direct photopatterning and seamless film deposition and manufacturing of OECTs across rigid, flexible, and biological substrates, exemplified by glass, textiles, and mouse skin (in vivo). Through careful optimization of the photopolymerization process, resulting OMIECs possess state-of-the-art electrical, electrochemical, and device properties along with exceptional compatibility and conformability with various flexible and biological surfaces. Finally, we demonstrate the utility of these photopatterned electrodes, manufactured directly on mouse skin in vivo, where they significantly enhance the recording efficacy and signal-to-noise ratio of low-frequency brain activity in anesthetized mice.

Place, publisher, year, edition, pages
WILEY-V C H VERLAG GMBH, 2026
Keywords
Bioelectronics; Neural recording; Organic electrochemical transistors; Organic mixed ion-electron conductors; Photopolymerization
National Category
Materials Chemistry
Identifiers
urn:nbn:se:liu:diva-219452 (URN)10.1002/anie.202517897 (DOI)001610169100001 ()41211808 (PubMedID)2-s2.0-105021302885 (Scopus ID)
Note

Funding Agencies|Swedish Foundation for Strategic Research [RMX18-0083]; Vinnova [2024-00598]; European Research Council [834677]; Stig Wadstrms Stiftelse; ke Wiberg Foundation [M23-0151]; Knut and Alice Wallenberg Foundation; Swedish Government Strategic Research Areas in Materials Science on Functional Materials at Linkping University [2009-00971]; GACR [24-10775S]; Swedish Research Council [2018-06197, 2022-04807, 2023-03651, 2023-05459]

Available from: 2025-11-17 Created: 2025-11-17 Last updated: 2026-05-04
Burtscher, B., Diacci, C., Azizian, P., Savvakis, M., Abrahamsson, T., Cabot, J. M., . . . Simon, D. (2025). Ad hoc manufactured OECT glucose sensor in capillary-driven microfluidic. npj Biosensing, 2(1), Article ID 44.
Open this publication in new window or tab >>Ad hoc manufactured OECT glucose sensor in capillary-driven microfluidic
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2025 (English)In: npj Biosensing, E-ISSN 3004-8656, Vol. 2, no 1, article id 44Article in journal (Refereed) Published
Abstract [en]

Glucose sensors are essential for managing diabetes, a metabolic disease affecting 1 in 10 adults globally. Enzyme-based biosensors, particularly those utilizing oxidoreductases, offer high specificity for glucose detection. This study explores the use of flavin-dependent glucose dehydrogenase from Aspergillus oryzae (AoGDH) in developing glucose sensors integrated into organic electrochemical transistors (OECTs) without mediators. We employed tri-thiophene monomer units to form conductive polymers interfacing with AoGDH, allowing sensing due to the proximity of the FAD cofactor. Despite AoGDH’s lower stability compared to glucose oxidase (GOx), its ability to function without oxygen sensitivity makes it advantageous. Using electropolymerization, we successfully incorporated AoGDH into the OECT gate electrode, demonstrating glucose detection in physiological ranges, albeit in buffer solutions. Furthermore, integrating this system into a 3D-printed capillary-driven microfluidic device facilitated on-demand sensor fabrication, enhancing portability and point-of-care application potential. This study underscores the viability of AoGDH-based, and ad hoc fabricated, OECT sensors for accurate and responsive glucose monitoring in biomedical applications.

Place, publisher, year, edition, pages
Springer Nature, 2025
National Category
Diagnostic Biotechnology
Identifiers
urn:nbn:se:liu:diva-223497 (URN)10.1038/s44328-025-00063-w (DOI)
Funder
EU, Horizon 2020, 813863EU, Horizon 2020, 813863EU, Horizon 2020, 813863Swedish Foundation for Strategic ResearchKnut and Alice Wallenberg FoundationSwedish Research Council
Available from: 2026-05-04 Created: 2026-05-04 Last updated: 2026-05-04
Ding, P., Vagin, M., Jafari, M. J., Mehandzhiyski, A., Gueskine, V., Abrahamsson, T., . . . Crispin, R. (2024). Migration-mitigated crossover of organic redox anions across a proton-exchange membrane. Sustainable Energy & Fuels, 8(20), 4882-4892
Open this publication in new window or tab >>Migration-mitigated crossover of organic redox anions across a proton-exchange membrane
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2024 (English)In: Sustainable Energy & Fuels, E-ISSN 2398-4902, Vol. 8, no 20, p. 4882-4892Article in journal (Refereed) Published
Abstract [en]

The two-electron oxygen reduction reaction (ORR), powered by affordable renewable energy, presents a more promising and sustainable approach to hydrogen peroxide production than traditional methods. In this study, we introduce a membrane electrolyzer for ORR-to-H2O2 generation. The conducting polymer poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate) (PEDOT:PSS) acts as the cathode that aids the oxygen reduction reaction through a two-electron pathway to produce H2O2. At the anode, we employed the oxidation of a model organic molecule, 4,5-dihydroxy-1,3-benzenedisulfonic acid disodium salt monohydrate (tiron). This catalyst-free anode process, as an alternative to the sluggish water oxidation reaction commonly used in classical electrolyzers, reduces voltage loss to release protons, cross the membrane, and feed the ORR at the cathode. Our study investigated the often-neglected issue of organic crossover during electrolyzer operation and its significant impact on transport behavior. This research paves the way for the development of crossover-free flow cells, extending the realm of electrochemical devices based on the electrolyte fed and the membrane. We introduce a membrane electrolyzer for the generation of hydrogen peroxide via oxygen reduction and catalyst-free oxidation of quinones. The study reports the effect of the applied coulombic forces on ions, which is the origin of crossover.

Place, publisher, year, edition, pages
ROYAL SOC CHEMISTRY, 2024
National Category
Other Chemical Engineering
Identifiers
urn:nbn:se:liu:diva-207958 (URN)10.1039/d4se00682h (DOI)001317476500001 ()
Note

Funding Agencies|VINNOVA (Digital Cellulose Center) [308634, 308635]; Knut and Alice Wallenberg foundation [KAW 2019.0604, KAW 2021.0195]; Wallenberg Wood Science Center (WWSC); Wallenberg Initiative Materials Science for Sustainability (WISE); Wallenberg Launchpad (WALP), KAW Project Grant; Swedish Energy Agency [52023-1]; Vetenskapradet [2016-05990, 2019-05577]; Swedish Electricity Storage and Balancing Centre (SESBC)

Available from: 2024-10-02 Created: 2024-10-02 Last updated: 2025-04-23Bibliographically approved
Gryszel, M., Byun, D., Burtscher, B., Abrahamsson, T., Brodsky, J., Simon, D. T., . . . Donahue, M. (2024). Vertical Organic Electrochemical Transistor Platforms for Efficient Electropolymerization of Thiophene Based Oligomers. Journal of Materials Chemistry C, 12(15), 5339-5346
Open this publication in new window or tab >>Vertical Organic Electrochemical Transistor Platforms for Efficient Electropolymerization of Thiophene Based Oligomers
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2024 (English)In: Journal of Materials Chemistry C, ISSN 2050-7526, E-ISSN 2050-7534, Vol. 12, no 15, p. 5339-5346Article in journal (Refereed) Published
Abstract [en]

Organic electrochemical transistors (OECTs) have emerged as promising candidates for various fields, including bioelectronics, neuromorphic computing, biosensors, and wearable electronics. OECTs operate in aqueous solutions, exhibit high amplification properties, and offer ion-to-electron signal transduction. The OECT channel consists of a conducting polymer, with PEDOT:PSS receiving the most attention to date. While PEDOT:PSS is highly conductive, and benefits from optimized protocols using secondary dopants and detergents, new p-type and n-type polymers are emerging with desirable material properties. Among these, low-oxidation potential oligomers are highly enabling for bioelectronics applications, however the polymers resulting from their polymerization lag far behind in conductivity compared with the established PEDOT:PSS. In this work we show that by careful design of the OECT geometrical characteristics, we can overcome this limitation and achieve devices that are on-par with transistors employing PEDOT:PSS. We demonstrate that the vertical architecture allows for facile electropolymerization of a family of trimers that are polymerized in very low oxidation potentials, without the need for harsh chemicals or secondary dopants. Vertical and planar OECTs are compared using various characterization methods. We show that vOECTs are superior platforms in general and propose that the vertical architecture can be expanded for the realization of OECTs for various applications.

Place, publisher, year, edition, pages
ROYAL SOC CHEMISTRY, 2024
National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:liu:diva-201886 (URN)10.1039/d3tc04730j (DOI)001190241500001 ()2-s2.0-85191403667 (Scopus ID)
Note

Funding agencies: European Research Council (AdG 2018 Magnus Berggren, 834677), the Swedish Research Council (2018-06197), and the Swedish Foundation for Strategic Research (RMX18-0083),  the Swedish Research Council (2022-04807, 2023-05459), the Swedish Government Strategic Research Areas in Materials Science on Functional Materials at Linköping University (Faculty Grant SFOMat-LiU No. 2009-00971). 

Available from: 2024-03-25 Created: 2024-03-25 Last updated: 2025-02-18Bibliographically approved
Roy, A., Bersellini Farinotti, A., Arbring Sjöström, T., Abrahamsson, T., Cherian, D., Karaday, M., . . . Simon, D. (2023). Electrophoretic Delivery of Clinically Approved Anesthetic Drug for Chronic Pain Therapy. Advanced Therapeutics, 6(7), Article ID 2300083.
Open this publication in new window or tab >>Electrophoretic Delivery of Clinically Approved Anesthetic Drug for Chronic Pain Therapy
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2023 (English)In: Advanced Therapeutics, E-ISSN 2366-3987, Vol. 6, no 7, article id 2300083Article in journal (Refereed) Published
Abstract [en]

Despite a range of available pain therapies, most patients report so-called “breakthrough pain.” Coupled with global issues like opioid abuse, there is a clear need for advanced therapies and technologies for safe and effective pain management. Here the authors demonstrate a candidate for such an advanced therapy: precise and fluid-flow-free electrophoretic delivery via organic electronic ion pumps (OEIPs) of the commonly used anesthetic drug bupivacaine. Bupivacaine is delivered to dorsal root ganglion (DRG) neurons in vitro. DRG neurons are a good proxy for pain studies as they are responsible for relaying ascending sensory signals from nociceptors (pain receptors) in the peripheral nervous system to the central nervous system. Capillary based OEIPs are used due to their probe-like and free-standing form factor, ideal for interfacing with cells. By delivering bupivacaine with the OEIP and recording dose versus response (Ca2+ imaging), it is observed that only cells close to the OEIP outlet (≤75 µm) are affected (“anaesthetized”) and at concentrations up to 10s of thousands of times lower than with bulk/bolus delivery. These results demonstrate the first effective OEIP deliveryof a clinically approved and widely used analgesic pharmaceutical, and thus are a major translational milestone for this technology.

Place, publisher, year, edition, pages
John Wiley & Sons, Ltd, 2023
Keywords
anesthetic, bupivacaine, calcium imaging, drug delivery, electrophoretic, ion exchange membrane
National Category
Anesthesiology and Intensive Care
Identifiers
urn:nbn:se:liu:diva-193517 (URN)10.1002/adtp.202300083 (DOI)000977943800001 ()2-s2.0-85154059805 (Scopus ID)
Note

Funding agencies: This work was supported by the Swedish Foundation for Strategic Research, the Knut and Alice Wallenberg Foundation, the Swedish Research Council, the European Research Council (AdG 2018 Magnus Berggren, 834677 and CoG 2019 Camilla Svensson, 866075), and Vinnova. Additional support was provided by the Swedish Government Strategic Research Area in Materials Science on Advanced Functional Materials at Linköping University (Faculty Grant SFO-Mat-LiU no. 2009-00971).

Available from: 2023-05-03 Created: 2023-05-03 Last updated: 2024-03-26Bibliographically approved
Cherian, D., Roy, A., Farinotti, A. B., Abrahamsson, T., Arbring Sjöström, T., Tybrandt, K., . . . Simon, D. (2023). Flexible Organic Electronic Ion Pump Fabricated Using Inkjet Printing and Microfabrication for Precision In Vitro Delivery of Bupivacaine. Advanced Healthcare Materials, 12(24), Article ID 2300550.
Open this publication in new window or tab >>Flexible Organic Electronic Ion Pump Fabricated Using Inkjet Printing and Microfabrication for Precision In Vitro Delivery of Bupivacaine
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2023 (English)In: Advanced Healthcare Materials, ISSN 2192-2640, E-ISSN 2192-2659, Vol. 12, no 24, article id 2300550Article in journal (Refereed) Published
Abstract [en]

The organic electronic ion pump (OEIP) is an on-demand electrophoretic drug delivery device, that via electronic to ionic signal conversion enables drug delivery without additional pressure or volume changes. The fundamental component of OEIPs is their polyelectrolyte membranes which are shaped into ionic channels that conduct and deliver ionic drugs, with high spatiotemporal resolution. The patterning of these membranes is essential in OEIP devices and is typically achieved using laborious micro processing techniques. Here, we report the development of an inkjet printable formulation of polyelectrolyte, based on a custom anionically functionalized hyperbranched polyglycerol (i-AHPG). This polyelectrolyte ink greatly simplifies the fabrication process, and is used in the production of free standing, OEIPs on flexible polyimide substrates. Both i-AHPG and the OEIP devices are characterized, exhibiting favorable iontronic characteristics of charge selectivity and ability to transport aromatic compounds. Further, the applicability of these technologies is demonstrated by transport and delivery of the pharmaceutical compound bupivacaine to dorsal root ganglion cells with high spatial precision and effective nerve-blocking, highlighting the applicability of these technologies for biomedical scenarios.

Place, publisher, year, edition, pages
John Wiley & Sons, 2023
Keywords
bioelectronics, flexible devices, inkjet printing, polyelectrolytes, polyimide
National Category
Materials Chemistry
Identifiers
urn:nbn:se:liu:diva-193520 (URN)10.1002/adhm.202300550 (DOI)001010551300001 ()37069480 (PubMedID)2-s2.0-85161982885 (Scopus ID)
Note

Funding: Swedish Foundation for Strategic Research; Knut and Alice Wallenberg Foundation; Swedish Research Council; European Research Council [834677]; Swedish Government Strategic Research Area in Materials Science on Advanced Functional Materials at Linkoping University (Faculty Grant SFO-Mat-LiU) [2009-00971]; Vinnova

Available from: 2023-05-03 Created: 2023-05-03 Last updated: 2025-06-03Bibliographically approved
Gerasimov, J. Y., Halder, A., Mousa, A. H., Ghosh, S., Padinhare, H., Abrahamsson, T., . . . Fabiano, S. (2022). Rational Materials Design for In Operando Electropolymerization of Evolvable Organic Electrochemical Transistors. Advanced Functional Materials, 32(32), Article ID 2202292.
Open this publication in new window or tab >>Rational Materials Design for In Operando Electropolymerization of Evolvable Organic Electrochemical Transistors
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2022 (English)In: Advanced Functional Materials, ISSN 1616-301X, E-ISSN 1616-3028, Vol. 32, no 32, article id 2202292Article in journal (Refereed) Published
Abstract [en]

Organic electrochemical transistors formed by in operando electropolymerization of the semiconducting channel are increasingly becoming recognized as a simple and effective implementation of synapses in neuromorphic hardware. However, very few studies have reported the requirements that must be met to ensure that the polymer spreads along the substrate to form a functional conducting channel. The nature of the interface between the substrate and various monomer precursors of conducting polymers through molecular dynamics simulations is investigated, showing that monomer adsorption to the substrate produces an increase in the effective monomer concentration at the surface. By evaluating combinatorial couples of monomers baring various sidechains with differently functionalized substrates, it is shown that the interactions between the substrate and the monomer precursor control the lateral growth of a polymer film along an inert substrate. This effect has implications for fabricating synaptic systems on inexpensive, flexible substrates.

Place, publisher, year, edition, pages
Wiley-V C H Verlag GMBH, 2022
Keywords
2, 3-dihydrothieno[3, 4]dioxin-5-yl)thiophene, 4-b][1, 5-bis(2, electropolymerization, ETE-S, evolvable transistors, organic electrochemical transistors, silanes, synaptic transistors
National Category
Polymer Chemistry
Identifiers
urn:nbn:se:liu:diva-185636 (URN)10.1002/adfm.202202292 (DOI)000799455500001 ()
Note

Funding: Swedish Foundation for Strategic Research [RMX18-0083]; Swedish Research Council [2018-06197]; European Research Council [834677]; Swedish Government Strategic Research Area in Materials Science on Functional Materials at Linkoping University [SFO-Mat-LiU 2009-00971]; Knut and Alice Wallenberg Foundation; Onnesjo Foundation

Available from: 2022-06-07 Created: 2022-06-07 Last updated: 2023-12-28Bibliographically approved
Tommasini, G., Dufil, G., Fardella, F., Strakosas, X., Fergola, E., Abrahamsson, T., . . . Tortiglione, C. (2022). Seamless integration of bioelectronic interface in an animal model via in vivo polymerization of conjugated oligomers. Bioactive Materials, 10, 107-116
Open this publication in new window or tab >>Seamless integration of bioelectronic interface in an animal model via in vivo polymerization of conjugated oligomers
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2022 (English)In: Bioactive Materials, E-ISSN 2452-199X, Vol. 10, p. 107-116Article in journal (Refereed) Published
Abstract [en]

Leveraging the biocatalytic machinery of living organisms for fabricating functional bioelectronic interfaces, in vivo, defines a new class of micro-biohybrids enabling the seamless integration of technology with living biological systems. Previously, we have demonstrated the in vivo polymerization of conjugated oligomers forming conductors within the structures of plants. Here, we expand this concept by reporting that Hydra, an invertebrate animal, polymerizes the conjugated oligomer ETE-S both within cells that expresses peroxidase activity and within the adhesive material that is secreted to promote underwater surface adhesion. The resulting conjugated polymer forms electronically conducting and electrochemically active μm-sized domains, which are inter-connected resulting in percolative conduction pathways extending beyond 100 μm, that are fully integrated within the Hydra tissue and the secreted mucus. Furthermore, the introduction and in vivo polymerization of ETE-S can be used as a biochemical marker to follow the dynamics of Hydra budding (reproduction) and regeneration. This work paves the way for well-defined self-organized electronics in animal tissue to modulate biological functions and in vivo biofabrication of hybrid functional materials and devices.

Place, publisher, year, edition, pages
Elsevier, 2022
Keywords
polymerization, Bioelectronics interfaces, Conjugated oligomers, Model organism
National Category
Neurosciences
Identifiers
urn:nbn:se:liu:diva-181716 (URN)10.1016/j.bioactmat.2021.08.025 (DOI)000743377900002 ()34901533 (PubMedID)
Note

Funding agencies: European Unions Horizon 2020 research and innovation programme [800926]; Swedish Research CouncilSwedish Research CouncilEuropean Commission [VR-2017-04910]; Knut and Alice Wallenberg FoundationKnut & Alice Wallenberg Foundation; Swedish Foundation for Strategic Research (SSF)Swedish Foundation for Strategic Research; European Research Council (ERC)European Research Council (ERC)European Commission [834677]; Swedish Government Strategic Research Area in Materials Science on Advanced Functional Materials at Linkoping University (Faculty Grant SFO-Mat-LiU) [2009-00971]; MultiPark - A Strategic Research Area at Lund University; MIURMinistry of Education, Universities and Research (MIUR) [SHARID - ARS01-01270]

Available from: 2021-12-07 Created: 2021-12-07 Last updated: 2026-02-10Bibliographically approved
Ghorbani Shiraz, H., Vagin, M., Ruoko, T.-P., Gueskine, V., Karon, K., Lapkowski, M., . . . Crispin, R. (2022). Towards electrochemical hydrogen storage in liquid organic hydrogen carriers via proton-coupled electron transfers. Journal of Energy Chemistry, 73, 292-300
Open this publication in new window or tab >>Towards electrochemical hydrogen storage in liquid organic hydrogen carriers via proton-coupled electron transfers
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2022 (English)In: Journal of Energy Chemistry, ISSN 2095-4956, E-ISSN 2096-885X, Vol. 73, p. 292-300Article in journal (Refereed) Published
Abstract [en]

Green hydrogen is identified as one of the prime clean energy carriers due to its high energy density and a zero emission of CO2. A possible solution for the transport of H2 in a safe and low-cost way is in the form of liquid organic hydrogen carriers (LOHCs). As an alternative to loading LOHC with H2 via a two-step procedure involving preliminary electrolytic production of H2 and subsequent chemical hydrogenation of the LOHC, we explore here the possibility of electrochemical hydrogen storage (EHS) via conversion of proton of a proton donor into a hydrogen atom involved in covalent bonds with the LOHC (R) via a protoncoupled electron transfer (PCET) reaction: . We chose 9-fluorenone/ fluorenol (Fnone/Fnol) conversion as such a model PCET reaction. The electrochemical activation of Fnone via two sequential electron transfers was monitored with in-situ and operando spectroscopies in absence and in presence of different alcohols as proton donors of different reactivity, which enabled us to both quantify and get the mechanistic insight on PCET. The possibility of hydrogen extraction from the loaded carrier molecule was illustrated by chemical activation.

Place, publisher, year, edition, pages
Elsevier, 2022
Keywords
Proton -coupled electron transfer; Electrochemical hydrogen storage; Hydrogen bonding agent; Anion-radical; Comproportionation
National Category
Organic Chemistry
Identifiers
urn:nbn:se:liu:diva-187281 (URN)10.1016/j.jechem.2022.06.015 (DOI)000829348500004 ()2-s2.0-85133925103 (Scopus ID)
Note

Funding Agencies|Swedish Research Council [2016-05990]; Knut and Alice Wallenberg Foun-dation [H2O2]; Swedish Government Strategic Research Area in Materials Science on Advanced Functional Mate-rials at Link?ping University [2009-00971]

Available from: 2022-08-17 Created: 2022-08-17 Last updated: 2025-09-11Bibliographically approved
Abrahamsson, T. (2021). Synthetic Functionalities for Ion and Electron Conductive Polymers: Applications in Organic Electronics and Biological Interfaces. (Doctoral dissertation). Linköping: Linköping University Electronic Press
Open this publication in new window or tab >>Synthetic Functionalities for Ion and Electron Conductive Polymers: Applications in Organic Electronics and Biological Interfaces
2021 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

In the search for understanding and communicating with all biological systems, in humans, animals, plants, and even microorganisms, we find a common language of all communicating via electrons, ions and molecules. Since the discovery of organic electronics, the ability to bridge the gap and communicate be-tween modern technology and biology has emerged. Organic chemistry pro-vides us with tools for understanding and a material platform of polymer electronics for communication. Such insights give us not only the ability to observe fundamental phenomenon but to actively design and construct materials with chemical functionalities towards better interfaces and applications. Organic electronic materials and devices have found their way to be implemented in the field of medicine for diagnostic and therapeutic purposes, but also in water purification and to help tackle the monumental task in creating the next generation of sustainable energy production and storage. Ultimately it’s safe to say that organic electronics are not going to replace our traditional technology based on inorganic materials but rather the two fields can find a way to complement each other for various purposes and applications. Compared to conventional silicon based technology, production of carbon-based organic electronic polymer materials are extremely cheap and devices can even be made flexible and soft with great compatibility towards biology.  

The main focus of this thesis has been developing and synthesizing new types of organic electronic and ionic conductive polymeric materials. Rational chemical design and modifications of the materials have been utilized to introduce specific functionalities to the materials. The functionalities serving the purpose to facilitate ion and electron conductive charge transport for organic electronics and with biological interface implementation of the polymer materials. 

Multi-functional ionic conductive hyperbranched polyglycerol polyelectrolytes (dendrolytes) were developed comprising both ionically charged groups and cross-linkable groups. The hyperbranched polyglycerol core structure of the material possesses a hydrophilic solvating platform for both ions and maintenance of solvent molecules, while being a biocompatible structure. Coupled with the peripheral charged ionic functionalities of the polymer, the dendrolyte materials are highly ionic conductive and selective towards cationic and anionic charged atoms and large molecules when implemented as ion-exchange membranes. Homogenous ion-exchange membrane casting has been achieved by the implementation of cross-linkable functionalities in the dendrolytes, utilizing robust click-chemistry for efficient micro and macro fabrication processing of the ion-ex-change membranes for organic electronic devices. The ion-exchange membrane material was implemented in electrophoretic drug delivery devices (organic electronic ion pumps), which are used for delivery of ions and neurotransmitters with spatiotemporal resolution and are able to communicate and be used for therapeutic drug delivery purposes in biological interfaces. The dendrolyte materials were also able to form free-standing membranes, making it possible for implementation in fuel cell and desalination purposes. 

Trimeric conjugated thiophene pre-polymer structures were also developed in the thesis and synthesized for the purpose of implementation of the material in vivo to form electrically conductive polymer structures, and in such manner to be able to create electrodes and ultimately to connect with the central nervous system. The conjugated pre-polymers being both water soluble and enzymatically polymerizable serve as a platform to realize such a concept. Also, modifying the trimeric structure with cross-linkable functionality created the capability to form better interfaces and stability towards biological environments.   

Place, publisher, year, edition, pages
Linköping: Linköping University Electronic Press, 2021. p. 97
Series
Linköping Studies in Science and Technology. Dissertations, ISSN 0345-7524 ; 2193
National Category
Polymer Chemistry
Identifiers
urn:nbn:se:liu:diva-181717 (URN)10.3384/9789179291341 (DOI)9789179291334 (ISBN)9789179291341 (ISBN)
Public defence
2022-01-14, K1, Kåkenhus, Campus Norrköping, Norrköping, 10:15 (English)
Opponent
Supervisors
Available from: 2021-12-07 Created: 2021-12-07 Last updated: 2021-12-07Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-3615-1850

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