We report the application of multiphoton microfabrication to prepare conducting polymer (CP)-based biomaterials that were capable of drug delivery and interacting with brain tissue ex vivo, thereby highlighting the potential of multiphoton lithography to prepare electroactive biomaterials which may function as implantable neural biointerfaces (e.g. electrodes)
AbstractDeveloping stimulus-responsive biomaterials with easy-to-tailor properties is a highly desir...
Developing the stimuli-responsive biomaterials with tailor properties represents an important goal o...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
Neural electrodes are typically manufactured from inorganic materials, however, mechanical mismatch ...
Electromagnetic fields affect a variety of tissues (e.g. bone, muscle, nerve and skin) and play impo...
Thesis (Ph. D.)--Harvard-MIT Division of Health Sciences and Technology, 2005.Vita.Includes bibliogr...
Conducting polymers (CPs), especially poly(3,4-ethylenedioxythiophthene) (PEDOT) and poly(pyrrole) (...
The interface between micromachined neural microelectrodes and neural tissue plays an important role...
Neural prosthetic devices are artificial extensions to the body that restore or supplement function ...
textCreating effective cellular interfaces that can provide specific cellular signals is important f...
Micromachined neural prosthetic devices facilitate the functional stimulation of and recording from ...
Micromachined neural prosthetic devices facilitate the functional stimulation of and recording from ...
textCreating effective cellular interfaces that can provide specific cellular signals is important f...
The unique electrochemical properties of the conductive polymer poly(3,4-ethylenedioxythiophene):pol...
The context of the thesis is the field of three-dimensional (3D) conducting polymer (CP) electrodes ...
AbstractDeveloping stimulus-responsive biomaterials with easy-to-tailor properties is a highly desir...
Developing the stimuli-responsive biomaterials with tailor properties represents an important goal o...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
Neural electrodes are typically manufactured from inorganic materials, however, mechanical mismatch ...
Electromagnetic fields affect a variety of tissues (e.g. bone, muscle, nerve and skin) and play impo...
Thesis (Ph. D.)--Harvard-MIT Division of Health Sciences and Technology, 2005.Vita.Includes bibliogr...
Conducting polymers (CPs), especially poly(3,4-ethylenedioxythiophthene) (PEDOT) and poly(pyrrole) (...
The interface between micromachined neural microelectrodes and neural tissue plays an important role...
Neural prosthetic devices are artificial extensions to the body that restore or supplement function ...
textCreating effective cellular interfaces that can provide specific cellular signals is important f...
Micromachined neural prosthetic devices facilitate the functional stimulation of and recording from ...
Micromachined neural prosthetic devices facilitate the functional stimulation of and recording from ...
textCreating effective cellular interfaces that can provide specific cellular signals is important f...
The unique electrochemical properties of the conductive polymer poly(3,4-ethylenedioxythiophene):pol...
The context of the thesis is the field of three-dimensional (3D) conducting polymer (CP) electrodes ...
AbstractDeveloping stimulus-responsive biomaterials with easy-to-tailor properties is a highly desir...
Developing the stimuli-responsive biomaterials with tailor properties represents an important goal o...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...