25 papers · ranked by Valyu relevance
Chandani Chitrakar, Eric Hedrick, Lauren Adegoke, Melanie Ecker + 2 more
'Zhou Li' 'Bojing Shi'] Medical science technology has improved tremendously over the decades with the invention of robotic surgery, gene editing, immune therapy, etc. However, scientists are now recognizing the significance of ‘biological circuits’ i.e., bodily innate electrical systems for the healthy functioning of…
Mohammad Reza Abidian
This special issue dedicates to the emerging field of organic bioelectronics that explore the fundamentals and the applications of organic electronics materials in biology and medicine. Bridging the interface between biology and electronics necessitates advances in materials, enabling better performing devices or…
Andie Robinsons, Craig McBeth, Ruman Rahman, Richard Hague + 1 more
The field of bioelectronics is developing exponentially. There is now a drive to interface electronics with biology for the development of new technologies to improve our understanding of electrical forces in biology. This builds on our recently published work in which we show wireless electrochemistry could be used to…
Syed Abdul Moiz, Mohammed Saleh Alshaikh, Ahmed N. M. Alahmadi
This review article provides an introductory overview of organic bioelectronics, focusing on the creation of electrical devices that use specialized carbon-based semiconducting materials to interact successfully with biological processes. These organic materials demonstrate flexibility, biocompatibility, and the…
Pauline Coquart, Andrea El Haddad, Dimitrios A. Koutsouras, Johanna Bolander
'Johanna Bolander'] The growing burden of degenerative, cardiovascular, neurodegenerative, and cancerous diseases necessitates innovative approaches to improve our pathophysiological understanding and ability to modulate biological processes. Organic bioelectronics has emerged as a powerful tool in this pursuit…
Christopher D. Bostick, Sabyasachi Mukhopadhyay, Israel Pecht, Mordechai Sheves + 2 more
'Mordechai Sheves' 'David Cahen' 'David Lederman'] We review the status of protein-based molecular electronics. First, we define and discuss fundamental concepts of electron transfer and transport in and across proteins and proposed mechanisms for these processes. We then describe the immobilization of proteins to…
Jessica L. Terrell, Tanya Tschirhart, Justin P. Jahnke, Kristina Stephens + 11 more
We developed a bidirectional bioelectronic communication system that is enabled by a redox signal transduction modality to exchange information between a living cell-embedded bioelectronics interface and an engineered microbial network. A naturally communicating three-member microbial network is “plugged into” an…
Xiaojun Wu, Yuanming Ye, Mubai Sun, Yongfeng Mei + 3 more
'Ming Wang' 'Enming Song'] Materials that establish functional, stable interfaces to targeted tissues for long-term monitoring/stimulation equipped with diagnostic/therapeutic capabilities represent breakthroughs in biomedical research and clinical medicine. A fundamental challenge is the mechanical and chemical…
Andie J. Robinson, Craig McBeth, Ruman Rahman, Richard J. M. Hague + 1 more
'Frankie J. Rawson'] The field of bioelectronics is developing exponentially. There is now a drive to interface electronics with biology for the development of new technologies to improve our understanding of electrical forces in biology. This builds on our recently published work in which we show wireless…
Alexander J. Boys, Alejandro Carnicer Lombarte, Amparo Güemes Gonzalez, Douglas C. van Niekerk + 5 more
Bioelectronics hold the key for understanding and treating disease. However, achieving stable, long-term interfaces between electronics and the body remains a challenge. Implantation of a bioelectronic device typically initiates a foreign body response, which can limit long-term recording and stimulation efficacy.…
Fadi Khoury, Zeina Habli, Jad Daorah, Yuchen Xu + 4 more
Organic Electrochemical Transistors (OECTs) are witnessing rapid growth in biomedical applications and are increasingly becoming an integral part of bio-electronic interfaces. High-performing OECTs are typically fabricated using multistep photolithography and conventional spin-coating and lift-off processes, and while…
Ramy Ghanim, Yoon Jae Lee, Garan Byun, Joy Jackson + 12 more
Bioelectronics have transformed our capacity to monitor and treat diseases; however, a lack of micrometer-scale, energy efficient communication options limit these devices from forming integrated networks that enable full-body, sensor driven, physiological control. Inspired by our nervous system’s ability to transmit…
Jan G. Gluschke, Jakob Seidl, Roman Lyttleton, Ky V. Nguyen + 8 more
'Maxime Lagier' 'F. Meyer' 'Peter Krogstrup' 'Jesper Nygård' 'Sebastian Lehmann' 'A. Bernardus Mostert' 'Paul Meredith' 'A. P. Micolich'] A central endeavour in bioelectronics is the development of logic elements to transduce and process ionic to electronic signals. Motivated by this challenge, we report fully…
Matteo Cucchi, Daniela Parker, Paschalis Gkoupidenis, Eleni Stavrinidou + 1 more
'Eleni Stavrinidou' 'Hans Kleemann'] Next-generation implantable computational devices require long-term stable electronic components capable of operating in, and interacting with, electrolytic surroundings without being damaged. Organic electrochemical transistors (OECTs) emerged as fitting candidates. However, while…
Ren Liu, Zhaolin Ren, Xinhe Zhang, Qiang Li + 6 more
Recent advancements in flexible bioelectronics have enabled continuous, long-term stable interrogation and intervention of biological systems. However, effectively utilizing the interrogated data to modulate biological systems to achieve specific biomedical and biological goals remains a challenge. In this study, we…
Jyoti Kaushal, Pratima Raut, Sanjay Kumar
The promising field of organic electronics has ushered in a new era of biosensing technology, offering a promising frontier for applications in both medical diagnostics and environmental monitoring. This review paper provides a comprehensive overview of organic electronics' remarkable progress and potential in…
Giuseppe De Giorgio, Pasquale D'Angelo, Giuseppe Tarabella, Saksham Sharma
'Saksham Sharma'] In this article, we attempt to make a conceptual bridge between the research in biology, pre-biotic chemistry, biomimetics, and the tools used in organic bioelectronics in terms of materials and devices. The goal is discussing how materials and devices of organic bioelectronics can be exploited and…
Yang Gao, Yuchen Zhou, Xudong Ji, Austin J. Graham + 8 more
Organic electrochemical transistors (OECTs) are ideal devices for translating biological signals into electrical readouts and have applications in bioelectronics, biosensing, and neuromorphic computing. Despite their potential, developing programmable and modular methods for living systems to interface with OECTs has…
Authors not listed
We present the design, fabrication, and application of robust metal/protein/metal junctions with ultrathin (~20 nm) protein films demonstrating long-term stability in ambient conditions and preserving their electron transport behavior also at ~10 K. These junctions establish a reliable platform with a permanent contact…
Vittorio Mottini, Liuxi Xing, Charlie Meilinger, Soham Inamdar + 9 more
Human skin, the body’s largest organ, plays a vital role in sensing and transmitting neuronal, mechanical, and biochemical signals, making it an essential non-invasive interface for health monitoring, rehabilitation, and human-machine interaction. However, aging-related changes, including thinning, increased wrinkling…
Authors not listed
Iontronic devices link ion-based transport with established electronic systems. Emerging capacitive devices, like CAPode and G-Cap, feature diode-like rectification and transistor-like switching, respectively, through electrochemical capacitor functionality for enhanced energy storage and signal processing in…
Authors not listed
For the first time a printable, miniaturized and gate-controlled electrochemical capacitor-diode (G-CAPode) is presented. The heart of the device consists of a recently developed asymmetric electrical double-layer capacitor system based on selective, size-depended ion adsorption. Due to the introduction of a sieving…
Authors not listed
Microbial bioelectronic devices using electroactive bacteria provide robust, low-cost, and sustainable solutions for sensing, power generation, and chemical production. While most rely on a limited group of Gram-negative bacteria, Gram-positive species offer devices with additional functionality and broader…
Authors not listed
Aligning the material properties of organic semiconducting polymers to effectively interface with biological matter is critical for their use in bioelectronic devices. Synthetic modification and advanced processing techniques have typically been employed to promote cell adhesion and growth. In this study we apply…
Authors not listed
Electrically conductive hydrogels based on conducting polymers have found increased use in bioelectronics due to their low moduli that mimic biological tissues, their ability to transport both ionic and electronic charges, and their ease of processing in various form factors via printing or injection. Current…