IMR OpenIR
Advancements in three-dimensional titanium alloy mesh scaffolds fabricated by electron beam melting for biomedical devices: mechanical and biological aspects
Nune, KC; Li, SJ; Misra, RDK; Misra, RDK (reprint author), Univ Texas El Paso, Mat & Biomed Engn Dept, Biomaterials Sci & Engn Lab Met, El Paso, TX 79968 USA.
2018-04-01
发表期刊SCIENCE CHINA-MATERIALS
ISSN2095-8226
卷号61期号:4页码:455-474
摘要We elucidate here the process-structure-property relationships in three-dimensional (3D) implantable titanium alloy biomaterials processed by electron beam melting (EBM) that is based on the principle of additive manufacturing. The conventional methods for processing of biomedical devices including freeze casting and sintering are limited because of the difficulties in adaptation at the host site and difference in the micro/macrostructure, mechanical, and physical properties with the host tissue. In this regard, EBM has a unique advantage of processing patient-specific complex designs, which can be either obtained from the computed tomography (CT) scan of the defect site or through a computeraided design (CAD) program. This review introduces and summarizes the evolution and underlying reasons that have motivated 3D printing of scaffolds for tissue regeneration. The overview comprises of two parts for obtaining ultimate functionalities. The first part focuses on obtaining the ultimate functionalities in terms of mechanical properties of 3D titanium alloy scaffolds fabricated by EBM with different characteristics based on design, unit cell, processing parameters, scan speed, porosity, and heat treatment. The second part focuses on the advancement of enhancing biological responses of these 3D scaffolds and the influence of surface modification on cell-material interactions. The overview concludes with a discussion on the clinical trials of these 3D porous scaffolds illustrating their potential in meeting the current needs of the biomedical industry.; We elucidate here the process-structure-property relationships in three-dimensional (3D) implantable titanium alloy biomaterials processed by electron beam melting (EBM) that is based on the principle of additive manufacturing. The conventional methods for processing of biomedical devices including freeze casting and sintering are limited because of the difficulties in adaptation at the host site and difference in the micro/macrostructure, mechanical, and physical properties with the host tissue. In this regard, EBM has a unique advantage of processing patient-specific complex designs, which can be either obtained from the computed tomography (CT) scan of the defect site or through a computeraided design (CAD) program. This review introduces and summarizes the evolution and underlying reasons that have motivated 3D printing of scaffolds for tissue regeneration. The overview comprises of two parts for obtaining ultimate functionalities. The first part focuses on obtaining the ultimate functionalities in terms of mechanical properties of 3D titanium alloy scaffolds fabricated by EBM with different characteristics based on design, unit cell, processing parameters, scan speed, porosity, and heat treatment. The second part focuses on the advancement of enhancing biological responses of these 3D scaffolds and the influence of surface modification on cell-material interactions. The overview concludes with a discussion on the clinical trials of these 3D porous scaffolds illustrating their potential in meeting the current needs of the biomedical industry.
部门归属[nune, krishna chaitanya ; misra, r. devesh kumar] univ texas el paso, mat & biomed engn dept, biomaterials sci & engn lab met, el paso, tx 79968 usa ; [li, shujun] chinese acad sci, inst met res, shenyang 11016, liaoning, peoples r china
关键词Bmp-induced Osteogenesis Free-form Fabrication In-vivo Performance Porous Tantalum Bone Ingrowth Osteoblast Functions Dental Implants Stem-cells Pore-size Surface Modification
学科领域Materials Science, Multidisciplinary
资助者Department of Metallurgical, Materials and Biomedical Engineering, University of Texas at El Paso; Key Research Program of Frontier Science, CAS [QYZDJ-SSW-JSC031-02]
收录类别SCI
语种英语
WOS记录号WOS:000432685300003
引用统计
被引频次:30[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://ir.imr.ac.cn/handle/321006/79380
专题中国科学院金属研究所
通讯作者Misra, RDK (reprint author), Univ Texas El Paso, Mat & Biomed Engn Dept, Biomaterials Sci & Engn Lab Met, El Paso, TX 79968 USA.
推荐引用方式
GB/T 7714
Nune, KC,Li, SJ,Misra, RDK,et al. Advancements in three-dimensional titanium alloy mesh scaffolds fabricated by electron beam melting for biomedical devices: mechanical and biological aspects[J]. SCIENCE CHINA-MATERIALS,2018,61(4):455-474.
APA Nune, KC,Li, SJ,Misra, RDK,&Misra, RDK .(2018).Advancements in three-dimensional titanium alloy mesh scaffolds fabricated by electron beam melting for biomedical devices: mechanical and biological aspects.SCIENCE CHINA-MATERIALS,61(4),455-474.
MLA Nune, KC,et al."Advancements in three-dimensional titanium alloy mesh scaffolds fabricated by electron beam melting for biomedical devices: mechanical and biological aspects".SCIENCE CHINA-MATERIALS 61.4(2018):455-474.
条目包含的文件
条目无相关文件。
个性服务
推荐该条目
保存到收藏夹
查看访问统计
导出为Endnote文件
谷歌学术
谷歌学术中相似的文章
[Nune, KC]的文章
[Li, SJ]的文章
[Misra, RDK]的文章
百度学术
百度学术中相似的文章
[Nune, KC]的文章
[Li, SJ]的文章
[Misra, RDK]的文章
必应学术
必应学术中相似的文章
[Nune, KC]的文章
[Li, SJ]的文章
[Misra, RDK]的文章
相关权益政策
暂无数据
收藏/分享
所有评论 (0)
暂无评论
 

除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。