Photocurable, biocompatible liquid resins are highly desired for 3D stereolithography based bioprinting. Here we solidified a novel renewable soybean oil epoxidized acrylate, using a 3D laser printing technique, into smart and highly biocompatible scaffolds capable of supporting growth of multipotent human bone marrow mesenchymal stem cells (hMSCs). Porous scaffolds were readily fabricated by simply adjusting the printer infill density; superficial structures of the polymerized soybean oil epoxidized acrylate were significantly affected by laser frequency and printing speed. Shape memory tests confirmed that the scaffold fixed a temporary shape at -18 °C and fully recovered its original shape at human body temperature (37 °C), which indicat...
With the development and accessibility of commercial three-dimensional (3D) printers, the capability...
Bio-Printing 3D organs, tissues & scaffolds is advancing everyday, with various methods being introd...
3D printing and ultrasound techniques are showing great promise in the evolution of human musculoske...
Photocurable, biocompatible liquid resins are highly desired for 3D stereolithography based bioprint...
The increasing demand for applying shape memory polymer to tissue culture and biomedical engineering...
Composites reinforced with micro-particles are widely used in engineering fields. Unfortunately, the...
In this study, a standard crude oil-based commercial resin containing urethane acrylate and acrylic ...
The objective of this study was to four-dimensional (4D) print novel biomimetic gradient tissue scaf...
The objective of this study was to four-dimensional (4D) print novel biomimetic gradient tissue scaf...
Structural bone allografts are used to treat critically sized segmental bone defects (CSBDs) as such...
The accessibility of renewable materials that are both sustainable and competitive is essential to a...
The mechanical properties and biocompatibility of nanocomposites composed of Acrylated Epoxidized So...
Stereolithography is a 3D-printing process that is rapidly shifting from being an expensive and limi...
Stereolithography (SLA), one of the seven different 3D printing technologies, uses photosensitive re...
With the development and accessibility of commercial three-dimensional (3D) printers, the capability...
Bio-Printing 3D organs, tissues & scaffolds is advancing everyday, with various methods being introd...
3D printing and ultrasound techniques are showing great promise in the evolution of human musculoske...
Photocurable, biocompatible liquid resins are highly desired for 3D stereolithography based bioprint...
The increasing demand for applying shape memory polymer to tissue culture and biomedical engineering...
Composites reinforced with micro-particles are widely used in engineering fields. Unfortunately, the...
In this study, a standard crude oil-based commercial resin containing urethane acrylate and acrylic ...
The objective of this study was to four-dimensional (4D) print novel biomimetic gradient tissue scaf...
The objective of this study was to four-dimensional (4D) print novel biomimetic gradient tissue scaf...
Structural bone allografts are used to treat critically sized segmental bone defects (CSBDs) as such...
The accessibility of renewable materials that are both sustainable and competitive is essential to a...
The mechanical properties and biocompatibility of nanocomposites composed of Acrylated Epoxidized So...
Stereolithography is a 3D-printing process that is rapidly shifting from being an expensive and limi...
Stereolithography (SLA), one of the seven different 3D printing technologies, uses photosensitive re...
With the development and accessibility of commercial three-dimensional (3D) printers, the capability...
Bio-Printing 3D organs, tissues & scaffolds is advancing everyday, with various methods being introd...
3D printing and ultrasound techniques are showing great promise in the evolution of human musculoske...