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Mo-doped titanate nanofibers from hydrothermal syntheses for improving bone scaffold
Yang Tian
Lu Zhang
Yiting Xiao
Trenton Collins
Abdussamad Akhter
Yan Huang
Z. Ryan Tian
Characterization and Application of Nanomaterials 2024, 7(1); https://doi.org/10.24294/can.v7i1.3587
Submitted:09 Dec 2023
Accepted:03 Jan 2024
Published:18 Jan 2024
Abstract
A longstanding interest in bone tissue engineering is the development of new bio-scaffolds that can be manufactured on a large scale with high throughput at low cost. Here, we report a low-cost and systematically optimized hydrothermal synthesis for producing Mo-doped potassium titanate nanofibers with high structural purity. This new nanosynthesis is based on bone tissue growth on an undoped titanate nanowires-entangled scaffold, as previously reported by our team. The morphological and structural characterization data suggest that the crystal structure of Mo-doped titanate nanofibers closely resembles that of the undoped ones. This resemblance is potentially valuable for assessing the role of Mo dopants in engineering bone tissue.
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