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International Journal of Bioprinting                  High-performance SrCS scaffolds via vat photopolymerization




            Funding                                            3.   Fernandez de Grado G, Keller L, Idoux-Gillet Y, et al., 2018,
                                                                  Bone substitutes: A review of their characteristics, clinical
            This work was supported by grants from the National Natural   use, and perspectives for large bone defects management. J
            Science  Foundation  of  China  (52205363),  Fundamental   Tissue Eng, 9: 2041731418776819.
            Research Funds for the Central Universities (2019kfyRCPY044   https://doi.org/10.1177/2041731418776819
            and 2021GCRC002), Program for HUST Academic Frontier
            Youth Team (2018QYTD04), and Program for Innovative   4.   Wubneh A, Tsekoura EK, Ayranci C, et al., 2018, Current
            Research Team of the Ministry of Education (IRT1244).  state of fabrication technologies and materials for bone
                                                                  tissue engineering. Acta Biomater, 80: 1–30.
            Conflict of interest                                  https://doi.org/10.1016/j.actbio.2018.09.031
            The authors declare that they have no known competing   5.   Hutmacher DW, 2000, Scaffolds in tissue engineering bone
            financial interests or personal relationships that could have   and cartilage. J Biomater, 21(24): 2529–2543.
            appeared to influence the work reported in this paper.  6.   Bose S, Roy M, Bandyopadhyay A, 2012, Recent advances in
                                                                  bone tissue engineering scaffolds. Trends Biotechnol, 30(10):
            Author contributions                                  546–554.

            Conceptualization: Annan Chen, Jin Su                 https://doi.org/10.1016/j.tibtech.2012.07.005
            Data curation: Yinjin Li, Yifei Li, Xi Yuan        7.   Nommeots-Nomm A, Lee PD, Jones JR, 2018, Direct ink
            Formal analysis: Yinjin Li                            writing of highly bioactive glasses. J Eur Ceram Soc, 38(3):
            Funding acquisition: Yusheng Shi, Chunzhe Yan, Annan Chen   837–844.
            Investigation: Yinjin Li                              https://doi.org/10.1016/j.jeurceramsoc.2017.08.006
            Methodology: Yinjin Li
            Resources: Yusheng Shi, Chunze Yan                 8.   Dong Y, Chen A, Yang T,  et al., 2023, Ultra-lightweight
            Validation: Yinjin Li                                 ceramic scaffolds with simultaneous improvement of pore
            Visualization: Yinjin Li                              interconnectivity  and  mechanical  strength.  J Mater Sci
                                                                  Technol, 137: 247–258.
            Writing – original draft: Yinjin Li
            Writing – review & editing: Jin Su, Annan Chen, Kezhuo   https://doi.org/10.1016/j.jmst.2022.07.052
               Chen, Zhaoqing Li, Chunze Yan, Jian Lu, Yusheng Shi   9.   Chen P, Su J, Wang H, et al., 2022, Mechanical properties and
                                                                  microstructure characteristics of lattice-surfaced PEEK cage
            Ethics approval and consent to participate            fabricated by high-temperature laser powder bed fusion.
                                                                  J Mater Sci Technol, 125: 105–117.
            Ethics approval of using rat BMSCs has been obtained
            from the local ethics committee or IRB for conducting   https://doi.org/10.1016/j.jmst.2022.03.009
            studies involving.                                 10.  Ros-Tárraga P, Murciano A, Mazón P, et al., 2017, New 3D
                                                                  stratified Si-Ca-P porous scaffolds obtained by sol-gel and
            Consent for publication                               polymer  replica method: Microstructural, mineralogical
                                                                  and chemical characterization. Ceram Int, 43(8): 6548–6553.
            Not applicable.
                                                                  https://doi.org/10.1016/j.ceramint.2017.02.081
            Availability of data                               11.  Wu Q, Sun H, 2022, Preparation and properties of porous
                                                                  ceramics from nickel slag by aerogel gelcasting. Ceram Int,
            Raw data used in this work are available from corresponding   48(22): 33058–33065.
            author upon reasonable request.
                                                                  https://doi.org/10.1016/j.ceramint.2022.07.238
            References                                         12.  Zhou W, Zhang Z, Li N, et al., 2022, A new mullite foamed
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                                                               13.  Liu F, He H, Cheng L, et al., 2023, Influence of layer thickness
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                                                                  on microstructure and dielectric properties of Mg2TiO4
            2.   Loi F, Cordova LA, Pajarinen J, et al., 2016, Inflammation,   microwave ceramics fabricated by vat photopolymerization.
               fracture and bone repair. Bone, 86: 119–30.        Addit Manuf, 63.
               https://doi.org/10.1016/j.bone.2016.02.020         https://doi.org/10.1016/j.addma.2023.103413



            Volume 9 Issue 6 (2023)                        536                          https://doi.org/10.36922/ijb.1233
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