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The fabricated structures show good quality of fabricated SPPCs (Figure 2b,c).
Such analysis provides clues to controlling the microstructure of the fabricated structures and, therefore, enabling the fabrication by robocasting of TCP scaffolds with tailored performance for bone tissue engineering applications.
Figure 3 shows SEM images of the fabricated structures.
Figures 21 and 22 show the SEM images of the fabricated structures.
We fabricated structures and controls by direct laser writing and characterized them by simultaneous high numerical-aperture, far-field optical microscopy and spectroscopy.
The inertial masses of the fabricated structures were pulled-in and released.
Annealing was applied for improving the surface roughness of the NHAs and increasing the sensitivity of the fabricated structures.
Static and dynamic simulations have been performed to characterize the design of the fabricated structures.
This paper presents the double-spring approach and demonstrates fabricated structures.
The mechanical performance of fabricated structures was evaluated using uniaxial compressive tests and infrared thermography.
Their application enables the encapsulation of cells and therefore an increase of the seeding efficiency of the fabricated structures.
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