Search Results - "Shuai, Cijun"

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  1. 1

    Bone biomaterials and interactions with stem cells by Gao, Chengde, Peng, Shuping, Feng, Pei, Shuai, Cijun

    Published in Bone research (21-12-2017)
    “…Bone biomaterials play a vital role in bone repair by providing the necessary substrate for cell adhesion, proliferation, and differentiation and by modulating…”
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    Journal Article
  2. 2

    Accelerated degradation of HAP/PLLA bone scaffold by PGA blending facilitates bioactivity and osteoconductivity by Shuai, Cijun, Yang, Wenjing, Feng, Pei, Peng, Shuping, Pan, Hao

    Published in Bioactive materials (01-02-2021)
    “…The incorporation of hydroxyapatite (HAP) into poly-l-lactic acid (PLLA) matrix serving as bone scaffold is expected to exhibit bioactivity and…”
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  3. 3

    Mg bone implant: Features, developments and perspectives by Yang, Youwen, He, Chongxian, Dianyu E, Yang, Wenjing, Qi, Fangwei, Xie, Deqiao, Shen, Lida, Peng, Shuping, Shuai, Cijun

    Published in Materials & design (05-01-2020)
    “…Mg and its alloys have been identified as promising bone implant materials owing to their natural degradability, good biocompatibility and favorable mechanical…”
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  4. 4

    A strawberry-like Ag-decorated barium titanate enhances piezoelectric and antibacterial activities of polymer scaffold by Shuai, Cijun, Liu, Guofeng, Yang, Youwen, Qi, Fangwei, Peng, Shuping, Yang, Wenjing, He, Chongxian, Wang, Guoyong, Qian, Guowen

    Published in Nano energy (01-08-2020)
    “…Polyvinylidene fluoride (PVDF)/barium titanate (BaTiO3) composites are becoming increasingly attractive in bone repair since it combines the advantage of…”
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  5. 5

    Magnetostrictive bulk Fe-Ga alloys prepared by selective laser melting for biodegradable implant applications by Gao, Chengde, Zeng, Zihao, Peng, Shuping, Shuai, Cijun

    Published in Materials & design (01-08-2022)
    “…[Display omitted] •Selective laser melting was used for the first time to manufacture bulk polycrystalline Fe81Ga19 alloys.•The influences of different laser…”
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  6. 6

    Degradation mechanisms and acceleration strategies of poly (lactic acid) scaffold for bone regeneration by Feng, Pei, Jia, Jiye, Liu, Mingyang, Peng, Shuping, Zhao, Zhenyu, Shuai, Cijun

    Published in Materials & design (15-11-2021)
    “…[Display omitted] •Degradation mechanisms of PLA bone scaffold were analyzed systematically.•Blending, copolymerization, compounding and surface modification…”
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  7. 7

    In situ synthesis of hydroxyapatite nanorods on graphene oxide nanosheets and their reinforcement in biopolymer scaffold by Shuai, Cijun, Peng, Bo, Feng, Pei, Yu, Li, Lai, Ruilin, Min, Anjie

    Published in Journal of advanced research (01-01-2022)
    “…[Display omitted] •GO was employed to in situ synthesize GO-HAP via hydrothermal reaction.•GO-HAP was blended with PLLA to fabricate biopolymer scaffold via…”
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  8. 8

    Laser additive manufacturing of Zn-2Al part for bone repair: Formability, microstructure and properties by Shuai, Cijun, Cheng, Yun, Yang, Youwen, Peng, Shuping, Yang, Wenjing, Qi, Fangwei

    Published in Journal of alloys and compounds (25-08-2019)
    “…Zinc (Zn) alloys are promising bone repair materials due to their inherent degradability, favorable mechanical property and biocompatibility. In this…”
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  9. 9

    Interfacial strengthening by reduced graphene oxide coated with MgO in biodegradable Mg composites by Shuai, Cijun, Wang, Bing, Bin, Shizhen, Peng, Shuping, Gao, Chengde

    Published in Materials & design (01-06-2020)
    “…Graphene oxide has been proven to be a promising anti-penetrant shield for Mg alloys against their over-rapid biodegradation, but the weak interfacial bonding…”
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  10. 10

    Rare earth improves strength and creep resistance of additively manufactured Zn implants by Yang, Youwen, Yang, Mingli, He, Chongxian, Qi, Fangwei, Wang, Di, Peng, Shuping, Shuai, Cijun

    Published in Composites. Part B, Engineering (01-07-2021)
    “…Poor mechanical strength and creep resistance limit the orthopedic application of biodegradable Zinc (Zn). In present work, cerium (Ce) was alloyed with Zn…”
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  11. 11

    Characterization of mechanical and biological properties of 3-D scaffolds reinforced with zinc oxide for bone tissue engineering by Feng, Pei, Wei, Pingpin, Shuai, Cijun, Peng, Shuping

    Published in PloS one (31-01-2014)
    “…A scaffold for bone tissue engineering should have highly interconnected porous structure, appropriate mechanical and biological properties. In this work, we…”
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  12. 12

    Magnetostrictive alloys: Promising materials for biomedical applications by Gao, Chengde, Zeng, Zihao, Peng, Shuping, Shuai, Cijun

    Published in Bioactive materials (01-02-2022)
    “…Magnetostrictive alloys have attracted increasing attention in biomedical applications because of the ability to generate reversible deformation in the…”
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  13. 13

    Graphene oxide assists polyvinylidene fluoride scaffold to reconstruct electrical microenvironment of bone tissue by Shuai, Cijun, Zeng, Zichao, Yang, Youwen, Qi, Fangwei, Peng, Shuping, Yang, Wenjing, He, Chongxian, Wang, Guoyong, Qian, Guowen

    Published in Materials & design (01-05-2020)
    “…Polyvinylidene fluoride (PVDF), as a typical piezoelectric polymer, has a great potential in reconstructing the electrical microenvironment of bone tissue. In…”
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  14. 14

    A magnetic micro-environment in scaffolds for stimulating bone regeneration by Shuai, Cijun, Yang, Wenjing, He, Chongxian, Peng, Shuping, Gao, Chengde, Yang, Youwen, Qi, Fangwei, Feng, Pei

    Published in Materials & design (05-01-2020)
    “…In present study, a strategy is presented to construct a magnetic micro-environment in poly-l-lactide/polyglycolic acid (PLLA/PGA) scaffolds fabricated via…”
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  15. 15

    Surface modification of nanodiamond: Toward the dispersion of reinforced phase in poly-l-lactic acid scaffolds by Shuai, Cijun, Li, Yang, Wang, Guoyong, Yang, Wenjing, Peng, Shuping, Feng, Pei

    “…The agglomeration of nanodiamond severely reduces the reinforcement in matrix of composites although it is often used as a reinforcing phase. In this study,…”
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  16. 16

    Heterogeneous grain structure in biodegradable Zn prepared via mechanical alloying and laser powder bed fusion for strength-plasticity synergy by Shuai, Cijun, Zhao, Yang, Deng, Youwen, Gao, Chengde

    Published in Virtual and physical prototyping (31-12-2024)
    “…ABSTRACTThis study presented a unique process of mechanical alloying (MA) and laser powder bed fusion (LPBF) to prepare heterogeneous grain structure (HGS) Zn…”
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  17. 17

    nMgO-incorporated PLLA bone scaffolds: Enhanced crystallinity and neutralized acidic products by Shuai, Cijun, Zan, Jun, Qi, Fangwei, Wang, Guoyong, Liu, Zheng, Yang, Youwen, Peng, Shuping

    Published in Materials & design (15-07-2019)
    “…Poly‑l‑lactic acid (PLLA) is a promising bone repair material because of its good biocompatibility and natural degradability. Nevertheless, the poor mechanical…”
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  18. 18

    A novel two-step sintering for nano-hydroxyapatite scaffolds for bone tissue engineering by Feng, Pei, Niu, Man, Gao, Chengde, Peng, Shuping, Shuai, Cijun

    Published in Scientific reports (07-07-2014)
    “…In this study, nano-hydroxyapatite scaffolds with high mechanical strength and an interconnected porous structure were prepared using NTSS for the first time…”
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  19. 19

    A Multimaterial Scaffold With Tunable Properties: Toward Bone Tissue Repair by Feng, Pei, Wu, Ping, Gao, Chengde, Yang, Youwen, Guo, Wang, Yang, Wenjing, Shuai, Cijun

    Published in Advanced science (01-06-2018)
    “…Polyetheretherketone (PEEK)/β‐tricalcium phosphate (β‐TCP) scaffolds are expected to be able to combine the excellent mechanical strength of PEEK and the good…”
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  20. 20

    Microstructure evolution and texture tailoring of reduced graphene oxide reinforced Zn scaffold by Yang, Youwen, Cheng, Yun, Peng, Shuping, Xu, Liang, He, Chongxian, Qi, Fangwei, Zhao, Mingchun, Shuai, Cijun

    Published in Bioactive materials (01-05-2021)
    “…Zinc (Zn) possesses desirable degradability and favorable biocompatibility, thus being recognized as a promising bone implant material. Nevertheless, the…”
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