In this study, well-defined, 3D arrays of air-suspended melt electrowritten fibers are made from medical grade poly(ɛ-caprolactone) (PCL). Low processing temperatures, lower voltages, lower ambient temperature, increased collector distance, and high collector speeds all aid to direct-write suspended fibers that can span gaps of several millimeters between support structures. Such processing parameters are quantitatively determined using a “wedge-design” melt electrowritten test frame to identify the conditions that increase the suspension probability of long-distance fibers. All the measured parameters impact the probability that a fiber is suspended over multimillimeter distances. The height of the suspended fibers can be controlled by a c...
Near-field electrospinning (NFES) is a direct fiber writing sub-technique derived from traditional e...
Electrospinning has proven to be a promising method to produce scaffolds for tissue engineering desp...
The additive manufacturing of highly ordered, micrometer‐scale scaffolds is at the forefront of tiss...
In this study, well-defined, 3D arrays of air-suspended melt electrowritten fibers are made from med...
Lab-grown tissues have tremendous potential to accelerate drug discovery and identify some of the un...
It was gathered from various studies that bimodal fibers are beneficial for cell behavior. By electr...
Aligned, electrospun polymer fibers have shown considerable promise in directing regenerating axons ...
Direct writing melt electrospinning is an additive manufacturing technique capable of the layer-by-l...
We describe the structural and functional properties of three-dimensional (3D) nerve guides fabricat...
Given the complexity of the nervous system, mechanisms to promote functional recovery at injury site...
The electrohydrodynamic stabilization of direct‐written fluid jets is explored to design and manufac...
Building two-dimensional (2D) and three-dimensional (3D) fibrous structures in the micro- and nanosc...
Polymer nanofiber scaffolds for use in neural tissue engineering have been fabricated via electrospi...
Our long-term goal is to develop an artificial implant as a conduit for axonal regeneration after pe...
Melt electrospinning and its additive manufacturing analogue, melt electrospinning writing (MEW), ar...
Near-field electrospinning (NFES) is a direct fiber writing sub-technique derived from traditional e...
Electrospinning has proven to be a promising method to produce scaffolds for tissue engineering desp...
The additive manufacturing of highly ordered, micrometer‐scale scaffolds is at the forefront of tiss...
In this study, well-defined, 3D arrays of air-suspended melt electrowritten fibers are made from med...
Lab-grown tissues have tremendous potential to accelerate drug discovery and identify some of the un...
It was gathered from various studies that bimodal fibers are beneficial for cell behavior. By electr...
Aligned, electrospun polymer fibers have shown considerable promise in directing regenerating axons ...
Direct writing melt electrospinning is an additive manufacturing technique capable of the layer-by-l...
We describe the structural and functional properties of three-dimensional (3D) nerve guides fabricat...
Given the complexity of the nervous system, mechanisms to promote functional recovery at injury site...
The electrohydrodynamic stabilization of direct‐written fluid jets is explored to design and manufac...
Building two-dimensional (2D) and three-dimensional (3D) fibrous structures in the micro- and nanosc...
Polymer nanofiber scaffolds for use in neural tissue engineering have been fabricated via electrospi...
Our long-term goal is to develop an artificial implant as a conduit for axonal regeneration after pe...
Melt electrospinning and its additive manufacturing analogue, melt electrospinning writing (MEW), ar...
Near-field electrospinning (NFES) is a direct fiber writing sub-technique derived from traditional e...
Electrospinning has proven to be a promising method to produce scaffolds for tissue engineering desp...
The additive manufacturing of highly ordered, micrometer‐scale scaffolds is at the forefront of tiss...