Electropolymerization processing of side-chain engineered EDOT for high performance microelectrode arrays.
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P. Yger | Y. Coffinier | M. Colin | Sébastien Janel | D. Guérin | F. Alibart | Sophie Halliez | N. Barois | A. Susloparova | Sébastien Pecqueur | Michel Daher Mansour | Corentin Scholaert | Mahdi Ghazal | L. Buée | Camille Lefebvre | Najami Ghodhbane | Alexis Melot | S. Halliez
[1] M. C. Tarhan,et al. Precision of neuronal localization in 2D cell cultures by using high-performance electropolymerized microelectrode arrays correlated with optical imaging , 2023, Biomedical physics & engineering express.
[2] F. Marken,et al. Conductive Polymer-Coated 3D Printed Microneedles: Biocompatible Platforms for Minimally Invasive Biosensing Interfaces. , 2023, Small.
[3] Ugo Bruno,et al. Two-photon polymerization lithography enabling the fabrication of PEDOT:PSS 3D structures for bioelectronic applications. , 2022, Chemical communications.
[4] X. Cui,et al. Hydrophilic Micro- and Macroelectrodes with Antibiofouling Properties for Biomedical Applications. , 2022, ACS Biomaterials Science & Engineering.
[5] Yun‐Hi Kim,et al. The Role of Long‐Alkyl‐Group Spacers in Glycolated Copolymers for High‐Performance Organic Electrochemical Transistors , 2022, Advanced materials.
[6] Laura L. Becerra,et al. Intrinsically Stretchable Block Copolymer Based on PEDOT:PSS for Improved Performance in Bioelectronic Applications. , 2022, ACS applied materials & interfaces.
[7] S. Arkan,et al. The Effects of Optogenetic Activation of Astrocytes on Spike-and-Wave Discharges in Genetic Absence Epileptic Rats , 2022, Annals of neurosciences.
[8] Y. Coffinier,et al. Bio‐Inspired Adaptive Sensing through Electropolymerization of Organic Electrochemical Transistors , 2021, Advanced Electronic Materials.
[9] Chung-Wen Kuo,et al. Electrochromic polymers based on 2,5-di(thiophen-2-yl)thieno[3,2-b]thiophene and thiophene derivatives as potential anodic layers for high performance electrochromic devices , 2021, Journal of the Taiwan Institute of Chemical Engineers.
[10] G. Malliaras,et al. Microelectrode Arrays for Simultaneous Electrophysiology and Advanced Optical Microscopy , 2021, Advanced science.
[11] L. Buée,et al. Low impedance and highly transparent microelectrode arrays (MEA) for in vitro neuron electrical activity probing , 2021, Sensors and Actuators B: Chemical.
[12] N. Attanayake,et al. Electrochemical Copolymerization of Isoindigo‐Based Donor‐Acceptor Polymers with Intrinsically Enhanced Conductivity and Near‐Infrared‐II Activity , 2020 .
[13] Jinsheng Zhao,et al. Color tuning for black-to-transmissive conjugated copolymer with excellent electrochromic properties via electrochemical copolymerization of two donor-acceptor type monomers , 2020 .
[14] J. Montgomery,et al. A simultaneous optical and electrical in-vitro neuronal recording system to evaluate microelectrode performance , 2020, PloS one.
[15] Rawad K. Hallani,et al. Ethylene Glycol-Based Side Chain Length Engineering in Polythiophenes and its Impact on Organic Electrochemical Transistor Performance , 2020 .
[16] E. Flahaut,et al. Carbon nanofiber-PEDOT composite films as novel microelectrode for neural interfaces and biosensing. , 2020, Biosensors & bioelectronics.
[17] Q. Barraud,et al. Soft Printable Electrode Coating for Neural Interfaces. , 2020, ACS applied bio materials.
[18] M. Giugliano,et al. Low-Impedance 3D PEDOT:PSS Ultramicroelectrodes , 2020, Frontiers in Neuroscience.
[19] Haifeng Cheng,et al. Preparation, characterizations and electrochromic properties of copolymers containing 5, 10, 15, 20-tetra(thienyl) porphyrin and thiophene derivatives , 2019 .
[20] Asiyeh Golabchi,et al. Zwitterionic polymer/polydopamine coating reduce acute inflammatory tissue responses to neural implants. , 2019, Biomaterials.
[21] F. Greco,et al. Inkjet-printed PEDOT:PSS multi-electrode arrays for low-cost in vitro electrophysiology. , 2019, Lab on a chip.
[22] George G. Malliaras,et al. Stability of PEDOT:PSS‐Coated Gold Electrodes in Cell Culture Conditions , 2019, Advanced Materials Technologies.
[23] Chunyang Li,et al. Synthesis and multi-electrochromic properties of asymmetric structure polymers based on carbazole-EDOT and 2, 5–dithienylpyrrole derivatives , 2019, Electrochimica Acta.
[24] J. Pancrazio,et al. Gold nanostructure microelectrode arrays for in vitro recording and stimulation from neuronal networks , 2019, Nanotechnology.
[25] David E. Williams,et al. The influence of macropores on PEDOT/PSS microelectrode coatings for neuronal recording and stimulation , 2019, Sensors and Actuators B: Chemical.
[26] F. Santoro,et al. Bioelectronics goes 3D: new trends in cell-chip interface engineering. , 2018, Journal of materials chemistry. B.
[27] D. Gonzalez-Dunia,et al. Nanowire based bioprobes for electrical monitoring of electrogenic cells , 2018, Journal of physics. Condensed matter : an Institute of Physics journal.
[28] Estelle A. Cuttaz,et al. Development and Characterization of PEDOT:PSS/Alginate Soft Microelectrodes for Application in Neuroprosthetics , 2018, Front. Neurosci..
[29] Gorka Orive,et al. Blending Electronics with the Human Body: A Pathway toward a Cybernetic Future , 2018, Advanced science.
[30] D. Mayer,et al. Engineering of Neuron Growth and Enhancing Cell-Chip Communication via Mixed SAMs. , 2018, ACS applied materials & interfaces.
[31] Dominique Vuillaume,et al. Cation discrimination in organic electrochemical transistors by dual frequency sensing , 2018, Organic Electronics.
[32] Pierre Yger,et al. A spike sorting toolbox for up to thousands of electrodes validated with ground truth recordings in vitro and in vivo , 2018, eLife.
[33] Kinam Park,et al. Foreign Body Response to Intracortical Microelectrodes Is Not Altered with Dip-Coating of Polyethylene Glycol (PEG) , 2017, Front. Neurosci..
[34] A. Offenhäusser,et al. Graphene Multielectrode Arrays as a Versatile Tool for Extracellular Measurements , 2017, Advanced healthcare materials.
[35] G. Malliaras,et al. PEDOT:PSS microelectrode arrays for hippocampal cell culture electrophysiological recordings , 2017 .
[36] L. Berdondini,et al. Intracellular and Extracellular Recording of Spontaneous Action Potentials in Mammalian Neurons and Cardiac Cells with 3D Plasmonic Nanoelectrodes , 2017, Nano letters.
[37] Luca Berdondini,et al. Electrical Responses and Spontaneous Activity of Human iPS-Derived Neuronal Networks Characterized for 3-month Culture with 4096-Electrode Arrays , 2016, Front. Neurosci..
[38] Amine Bermak,et al. A novel method for the fabrication of a high-density carbon nanotube microelectrode array , 2015 .
[39] Mark G. Allen,et al. Extracellular matrix-based intracortical microelectrodes: Toward a microfabricated neural interface based on natural materials , 2015, Microsystems & Nanoengineering.
[40] David C. Martin,et al. Poly[3,4-ethylene dioxythiophene (EDOT) -co- 1,3,5-tri[2-(3,4-ethylene dioxythienyl)]-benzene (EPh)] copolymers (PEDOT-co-EPh): optical, electrochemical and mechanical properties. , 2015, Journal of materials chemistry. B.
[41] Ricardo P. Nogueira,et al. Relationship between the Origin of Constant-Phase Element Behavior in Electrochemical Impedance Spectroscopy and Electrode Surface Structure , 2015 .
[42] Kevin J. Otto,et al. Glial cells, but not neurons, exhibit a controllable response to a localized inflammatory microenvironment in vitro , 2014, Front. Neuroeng..
[43] Andrés J. García,et al. Host response to microgel coatings on neural electrodes implanted in the brain. , 2014, Journal of biomedical materials research. Part A.
[44] H Zhao,et al. Fabrication of strongly adherent platinum black coatings on microelectrodes array , 2014, Science China Information Sciences.
[45] M. Spira,et al. Multi-electrode array technologies for neuroscience and cardiology. , 2013, Nature nanotechnology.
[46] D. Khodagholy,et al. PEDOT:TOS with PEG: a biofunctional surface with improved electronic characteristics , 2012 .
[47] O. Devos,et al. On the intrinsic coupling between constant-phase element parameters α and Q in electrochemical impedance spectroscopy , 2012 .
[48] Jarno M. A. Tanskanen,et al. Atomic layer deposited iridium oxide thin film as microelectrode coating in stem cell applications , 2012 .
[49] J. Shappir,et al. Formation of Essential Ultrastructural Interface between Cultured Hippocampal Cells and Gold Mushroom-Shaped MEA- Toward “IN-CELL” Recordings from Vertebrate Neurons , 2011, Front. Neuroeng..
[50] P. Leleux,et al. Highly Conformable Conducting Polymer Electrodes for In Vivo Recordings , 2011, Advanced materials.
[51] J. Shappir,et al. Long-term, multisite, parallel, in-cell recording and stimulation by an array of extracellular microelectrodes. , 2010, Journal of neurophysiology.
[52] Yoonkey Nam,et al. Surface-modified microelectrode array with flake nanostructure for neural recording and stimulation , 2010, Nanotechnology.
[53] M. Berggren,et al. Control of neural stem cell adhesion and density by an electronic polymer surface switch. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[54] G. Borghs,et al. Peptide-functionalized microfabricated structures for improved on-chip neuronal adhesion , 2008, 2008 30th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[55] M. Berggren,et al. Electronic control of Ca2+ signalling in neuronal cells using an organic electronic ion pump. , 2007, Nature materials.
[56] David C. Martin,et al. Polymerization of the conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) around living neural cells. , 2007, Biomaterials.
[57] Eshel Ben-Jacob,et al. Electro-chemical and biological properties of carbon nanotube based multi-electrode arrays , 2007, Nanotechnology.
[58] Bruce C. Wheeler,et al. Neural recording and stimulation of dissociated hippocampal cultures using microfabricated three-dimensional tip electrode array , 2006, Journal of Neuroscience Methods.
[59] L. Buée,et al. The Peptidylprolyl cis/trans-Isomerase Pin1 Modulates Stress-induced Dephosphorylation of Tau in Neurons , 2006, Journal of Biological Chemistry.
[60] Steve M. Potter,et al. An extremely rich repertoire of bursting patterns during the development of cortical cultures , 2006, BMC Neuroscience.
[61] Masanori Okumura,et al. Raman spectral changes of PEDOT-PSS in polymer light-emitting diodes upon operation , 2005 .
[62] T. Pajkossy,et al. Impedance spectroscopy at interfaces of metals and aqueous solutions — Surface roughness, CPE and related issues , 2005 .
[63] Conrad D. James,et al. Extracellular recordings from patterned neuronal networks using planar microelectrode arrays , 2004, IEEE Transactions on Biomedical Engineering.
[64] John R. Reynolds,et al. Electrochemical polymerization of poly(hydroxymethylated-3,4-ethylenedioxythiophene) (PEDOT-MeOH) on multichannel neural probes , 2004 .
[65] Bruce C. Wheeler,et al. Gold-coated microelectrode array with thiol linked self-assembled monolayers for engineering neuronal cultures , 2004, IEEE Transactions on Biomedical Engineering.
[66] A. Lasia,et al. Experimental study and modeling of impedance of the her on porous Ni electrodes , 2001 .
[67] T. Pajkossy,et al. On the origin of capacitance dispersion of rough electrodes , 2000 .
[68] H. Bock,et al. Biphenylene Ring Expansion by a (H3C)2Si Link from Silicone Grease As Proven by the Crystal Structures of [(Sodium+[2.2.1]cryptand)(9,9-dimethylsilafluorene•-)] as Well as [Sodium+(triglyme)2(biphenylene•-)] and by Total-Reflection X-ray Fluorescence Spectrometry (TXRF)1 , 1999 .
[69] P. Fromherz,et al. Neuron–silicon junction with voltage‐gated ionic currents , 1998, The European journal of neuroscience.
[70] T. Pajkossy,et al. Impedance of rough capacitive electrodes : the role of surface disorder , 1998 .
[71] D. Keller,et al. Scanning force microscopy under aqueous solutions. , 1997, Current opinion in structural biology.
[72] A. Lasia. Impedance of Porous Electrodes , 1995, ECS Transactions.
[73] T. Pajkossy,et al. Fractal dimension and fractional power frequency-dependent impedance of blocking electrodes , 1985 .
[74] J. Mooij,et al. Molecular and magnetic structure of the paramagnetic ion pair bis(tetraglyme)potassium biphenyl , 1978 .
[75] Carl Lagenaur,et al. Neuroadhesive L1 coating attenuates acute microglial attachment to neural electrodes as revealed by live two-photon microscopy. , 2017, Biomaterials.
[76] A. Offenhäusser,et al. Interfacing neurons on carbon nanotubes covered with diamond , 2017 .
[77] Xuehong Lu,et al. Conductivities enhancement of poly(3,4-ethylenedioxythiophene)/poly(styrene sulfonate) transparent electrodes with diol additives , 2012, Polymer Bulletin.
[78] J. Roncali,et al. Modification of the electrochemical and electronic properties of electrogenerated poly(3,4-ethylenedioxythiophene) by hydroxymethyl and oligo(oxyethylene) substituents , 2000 .
[79] L. K. Daniels. Rapid in-office and in-vivo desensitization of an injection phobia utilizing hypnosis. , 1976, The American journal of clinical hypnosis.