Building two-dimensional (2D) and three-dimensional (3D) fibrous structures in the micro- and nanoscale will offer exciting prospects for numerous applications spanning from sensors to energy storage and tissue engineering scaffolds. Electrospinning is a well-suited technique for drawing micro- to nanoscale fibers, but current methods of building electrospun fibers in 3D are restrictive in terms of printed height, design of macroscopic fiber networks, and choice of polymer. Here, we combine low-voltage electrospinning and additive manufacturing as a method to pattern layers of suspended mesofibers. Layers of fibers are suspended between 3D-printed supports in situ in multiple fiber layers and designable orientations. We examine the key work...
Nanofibrous structures have long been used as scaffolds for tissue engineering (TE) applications, du...
Fabrication of biomimetic tissues holds much promise for the regeneration of cells or organs that ar...
In this study, well-defined, 3D arrays of air-suspended melt electrowritten fibers are made from med...
Building two-dimensional (2D) and three-dimensional (3D) fibrous structures in the micro- and nanosc...
Building two-dimensional (2D) and three-dimensional (3D) fibrous structures in the micro- and nanosc...
Lab-grown tissues have tremendous potential to accelerate drug discovery and identify some of the un...
Extracellular matrix (ECM) is a fibrous natural cell environment, possessing complicated micro- and ...
Although regenerative medicine necessitates advanced three-dimensional (3D) scaffolds for organ and ...
Electrospinning is a versatile technique for the construction of microfibrous and nanofibrous struct...
ABSTRACT: A simple, robust, and cost-effective method is developed to fabricate nanofibrous micropat...
Fibers and fibrous structures are used extensively in various fields due to their many advantages. M...
Electrospinning, a process that converts a solution or melt droplet into an ejected jet under a high...
This study presents a 3D fabrication technique of nanofibrous scaffold for tissue engineering. A di...
The nanostructure of the extracellular matrix (ECM) can direct cell attachment, alignment, and organ...
\u3cp\u3eFabrication of biomimetic tissues holds much promise for the regeneration of cells or organ...
Nanofibrous structures have long been used as scaffolds for tissue engineering (TE) applications, du...
Fabrication of biomimetic tissues holds much promise for the regeneration of cells or organs that ar...
In this study, well-defined, 3D arrays of air-suspended melt electrowritten fibers are made from med...
Building two-dimensional (2D) and three-dimensional (3D) fibrous structures in the micro- and nanosc...
Building two-dimensional (2D) and three-dimensional (3D) fibrous structures in the micro- and nanosc...
Lab-grown tissues have tremendous potential to accelerate drug discovery and identify some of the un...
Extracellular matrix (ECM) is a fibrous natural cell environment, possessing complicated micro- and ...
Although regenerative medicine necessitates advanced three-dimensional (3D) scaffolds for organ and ...
Electrospinning is a versatile technique for the construction of microfibrous and nanofibrous struct...
ABSTRACT: A simple, robust, and cost-effective method is developed to fabricate nanofibrous micropat...
Fibers and fibrous structures are used extensively in various fields due to their many advantages. M...
Electrospinning, a process that converts a solution or melt droplet into an ejected jet under a high...
This study presents a 3D fabrication technique of nanofibrous scaffold for tissue engineering. A di...
The nanostructure of the extracellular matrix (ECM) can direct cell attachment, alignment, and organ...
\u3cp\u3eFabrication of biomimetic tissues holds much promise for the regeneration of cells or organ...
Nanofibrous structures have long been used as scaffolds for tissue engineering (TE) applications, du...
Fabrication of biomimetic tissues holds much promise for the regeneration of cells or organs that ar...
In this study, well-defined, 3D arrays of air-suspended melt electrowritten fibers are made from med...