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標(biāo)題: Titlebook: Computer-Aided Tissue Engineering; Methods and Protocol Alberto Rainer,Lorenzo Moroni Book 2021 Springer Science+Business Media, LLC, part [打印本頁]

作者: collude    時(shí)間: 2025-3-21 16:25
書目名稱Computer-Aided Tissue Engineering影響因子(影響力)




書目名稱Computer-Aided Tissue Engineering影響因子(影響力)學(xué)科排名




書目名稱Computer-Aided Tissue Engineering網(wǎng)絡(luò)公開度




書目名稱Computer-Aided Tissue Engineering網(wǎng)絡(luò)公開度學(xué)科排名




書目名稱Computer-Aided Tissue Engineering被引頻次




書目名稱Computer-Aided Tissue Engineering被引頻次學(xué)科排名




書目名稱Computer-Aided Tissue Engineering年度引用




書目名稱Computer-Aided Tissue Engineering年度引用學(xué)科排名




書目名稱Computer-Aided Tissue Engineering讀者反饋




書目名稱Computer-Aided Tissue Engineering讀者反饋學(xué)科排名





作者: adj憂郁的    時(shí)間: 2025-3-21 23:21
The Evolving Universe and the Origin of Lifedergo a sol-gel transition to avoid its collapse after deposition..To address this challenge, researchers are recently focusing their attention on the synthesis of several derivatives of natural biopolymers to enhance their printability. Here, we present an approach for the synthesis of photocurable
作者: 該得    時(shí)間: 2025-3-22 01:45
1064-3745 oiding known pitfalls...?Authoritative and cutting-edge, .Computer-Aided Tissue Engineering: Methods and Protocols. aims to be useful for new and experienced laboratory researchers working on different aspects of corneal regeneration..978-1-0716-0613-1978-1-0716-0611-7Series ISSN 1064-3745 Series E-ISSN 1940-6029
作者: 飛行員    時(shí)間: 2025-3-22 05:33

作者: Binge-Drinking    時(shí)間: 2025-3-22 12:24

作者: 兩棲動(dòng)物    時(shí)間: 2025-3-22 15:23

作者: 兩棲動(dòng)物    時(shí)間: 2025-3-22 17:15
Triply Periodic Minimal Surfaces (TPMS) for the Generation of Porous Architectures Using Stereolithodic minimal surfaces (TPMS). TPMS architectures display minimal surface energy that induce typical pore features and surface curvatures. Here we described a series of TPMS geometries and developed a procedure to build such scaffolds by stereolithography using biocompatible and biodegradable photosen
作者: ascetic    時(shí)間: 2025-3-23 01:14
3D Printing of Functionally Graded Films by Controlling Process Parameterse. Such scaffolds are often made using the additive manufacturing process, given its ability to create complex shapes, affordability, and the potential for patient-specific solutions. The success of the implant is closely related to the match of the scaffold mechanical properties to those of the hos
作者: 神秘    時(shí)間: 2025-3-23 01:41

作者: infringe    時(shí)間: 2025-3-23 06:57
Synthesis of an UV-Curable Divinyl-Fumarate Poly-ε-Caprolactone for Stereolithography Applicationshnique. In this manuscript, a photocrosslinkable poly-ε-caprolactone (PCL) has been synthesized by a two-step method starting from ring opening polymerization (ROP) of ε-caprolactone. Hydroxyethyl vinyl ether (HEVE) has been used both as the initiator of ROP and as photo-curable functional group to
作者: 友好    時(shí)間: 2025-3-23 13:32
Nanocomposite Clay-Based Bioinks for Skeletal Tissue Engineering form three-dimensional structures that can closely mimic tissues of interest. Our bioink formulation takes into account the potential for cell printing including a bioink nanocomposite that contains low fraction polymeric content to facilitate cell encapsulation and survival, while preserving hydro
作者: motor-unit    時(shí)間: 2025-3-23 16:54
Additive Manufacturing Using Melt Extruded Thermoplastics for Tissue Engineeringaffold manufacturing is commonly achieved by one of the following extrusion-based techniques: fused deposition modelling (FDM), 3D-fiber deposition (3DF), and bioextrusion. FDM needs the input material to be strictly in the form of a filament, whereas 3DF and bioextrusion can be used to process inpu
作者: 無彈性    時(shí)間: 2025-3-23 19:14
Computer-Aided Wet-Spinningng in controlling the external shape and macroporous structure of biomedical polymeric scaffold with those of wet-spinning in endowing the polymeric matrix with a spread microporosity. This book chapter is aimed at providing a detailed description of the experimental methods developed to fabricate b
作者: 哀求    時(shí)間: 2025-3-24 02:04

作者: 兇猛    時(shí)間: 2025-3-24 05:09

作者: MUTE    時(shí)間: 2025-3-24 10:13
3D Bioprinting of Complex, Cell-laden Alginate Constructsifferent automated biofabrication techniques have been used to produce cell-laden alginate hydrogel structures, especially bioprinting approaches. These approaches have been limited to 2D or simple 3D structures, however. In this chapter, a novel bioprinting technique is disclosed for the production
作者: 名字    時(shí)間: 2025-3-24 13:14

作者: 寬容    時(shí)間: 2025-3-24 16:22

作者: 英寸    時(shí)間: 2025-3-24 21:52
A Scaffold Free 3D Bioprinted Cartilage Model for In Vitro Toxicologynd proteins, which are sensitive to any other fabrication techniques. Bioprinting allows the generation of tissue constructs and models that closely mimic the anatomical and physiological attributes of a chosen tissue. In vitro toxicology assays can greatly benefit from bioprinting as drugs can be s
作者: 松軟    時(shí)間: 2025-3-25 01:32

作者: 催眠    時(shí)間: 2025-3-25 04:12

作者: 假設(shè)    時(shí)間: 2025-3-25 09:04
Triply Periodic Minimal Surfaces (TPMS) for the Generation of Porous Architectures Using Stereolithodic minimal surfaces (TPMS). TPMS architectures display minimal surface energy that induce typical pore features and surface curvatures. Here we described a series of TPMS geometries and developed a procedure to build such scaffolds by stereolithography using biocompatible and biodegradable photosensitive resins.
作者: 入會(huì)    時(shí)間: 2025-3-25 15:43
https://doi.org/10.1007/978-0-387-09534-9-architectures required for scaffold applications depend not only on the mechanical properties but also on the physical and molecular queues of the surrounding tissue within the defect site. Thus, the prediction of optimal features for tissue engineering scaffolds is very important, for both its phy
作者: Spirometry    時(shí)間: 2025-3-25 18:42
The Evolving Universe and the Origin of Lifedic minimal surfaces (TPMS). TPMS architectures display minimal surface energy that induce typical pore features and surface curvatures. Here we described a series of TPMS geometries and developed a procedure to build such scaffolds by stereolithography using biocompatible and biodegradable photosen
作者: 熱烈的歡迎    時(shí)間: 2025-3-26 00:00

作者: Institution    時(shí)間: 2025-3-26 01:58

作者: troponins    時(shí)間: 2025-3-26 04:55

作者: Inoperable    時(shí)間: 2025-3-26 10:20

作者: 爭(zhēng)議的蘋果    時(shí)間: 2025-3-26 15:13
The True Laws of Planetary Motion Revealedaffold manufacturing is commonly achieved by one of the following extrusion-based techniques: fused deposition modelling (FDM), 3D-fiber deposition (3DF), and bioextrusion. FDM needs the input material to be strictly in the form of a filament, whereas 3DF and bioextrusion can be used to process inpu
作者: 胡言亂語    時(shí)間: 2025-3-26 18:48
The Evolving Universe and the Origin of Lifeng in controlling the external shape and macroporous structure of biomedical polymeric scaffold with those of wet-spinning in endowing the polymeric matrix with a spread microporosity. This book chapter is aimed at providing a detailed description of the experimental methods developed to fabricate b
作者: Adenoma    時(shí)間: 2025-3-27 00:37

作者: Expiration    時(shí)間: 2025-3-27 04:48
The Roots of the Copernican Revolutiontructure with extracellular matrix-mimicking topography and adhesion sites, and further supporting localized drug release. Here, we describe the low-voltage electrospinning patterning (LEP) protocol, which allows direct and continuous patterning of sub-micron fibers in a controlled fashion. The proc
作者: 安慰    時(shí)間: 2025-3-27 09:19
Galileo Galilei and His Successorsifferent automated biofabrication techniques have been used to produce cell-laden alginate hydrogel structures, especially bioprinting approaches. These approaches have been limited to 2D or simple 3D structures, however. In this chapter, a novel bioprinting technique is disclosed for the production
作者: 使困惑    時(shí)間: 2025-3-27 10:14

作者: cocoon    時(shí)間: 2025-3-27 16:49

作者: Radiculopathy    時(shí)間: 2025-3-27 19:49
The Exalted Heroine and the Triumph of Ordernd proteins, which are sensitive to any other fabrication techniques. Bioprinting allows the generation of tissue constructs and models that closely mimic the anatomical and physiological attributes of a chosen tissue. In vitro toxicology assays can greatly benefit from bioprinting as drugs can be s
作者: Condyle    時(shí)間: 2025-3-27 22:09
https://doi.org/10.1007/978-1-0716-0611-7extrusion; fabrication methods; stereolithographic; AM structures; surface finishing
作者: Ophthalmoscope    時(shí)間: 2025-3-28 04:18
978-1-0716-0613-1Springer Science+Business Media, LLC, part of Springer Nature 2021
作者: 多余    時(shí)間: 2025-3-28 07:51
Alberto Rainer,Lorenzo MoroniIncludes cutting-edge methods and protocols.Provides step-by-step detail essential for reproducible results.Contains key notes and implementation advice from the experts
作者: eardrum    時(shí)間: 2025-3-28 14:12

作者: ENNUI    時(shí)間: 2025-3-28 14:37

作者: 和音    時(shí)間: 2025-3-28 18:54
The True Laws of Planetary Motion Revealed using 3D printers. Such an approach exploits the control of a process parameter, without any hardware modification. The mechanical properties of the manufactured films have been experimentally tested and analytically characterized.
作者: 在駕駛    時(shí)間: 2025-3-29 02:35

作者: Offensive    時(shí)間: 2025-3-29 07:05
The Evolving Universe and the Origin of Lifeowed and simply adapted to fabricate other kinds of scaffold, with a different porous structure or based on different biodegradable polymers, by applying the processing parameters reported in relevant tables included in the text.
作者: 同音    時(shí)間: 2025-3-29 09:21

作者: Insufficient    時(shí)間: 2025-3-29 14:48
Nanocomposite Clay-Based Bioinks for Skeletal Tissue Engineeringte, and the resulting bioink can be printed in 3D structures ready for implantation. In this chapter, we provide the methodology for preparation, encapsulation, and printing of SSCs in a unique clay-based bioink.
作者: Culpable    時(shí)間: 2025-3-29 17:43
Computer-Aided Wet-Spinningowed and simply adapted to fabricate other kinds of scaffold, with a different porous structure or based on different biodegradable polymers, by applying the processing parameters reported in relevant tables included in the text.
作者: judiciousness    時(shí)間: 2025-3-29 20:07

作者: 暫時(shí)休息    時(shí)間: 2025-3-30 02:48

作者: 邪惡的你    時(shí)間: 2025-3-30 07:37
The Roots of the Copernican Revolutionessable polymers range from protein (e.g., gelatin) to thermoplastic (e.g., polystyrene) polymers, with flexible selections of collecting substrates. The operation voltage for fiber fabrication can be as low as 50?V, which brings the benefits of reducing costs and mild-processing.
作者: Consensus    時(shí)間: 2025-3-30 08:36

作者: 哀求    時(shí)間: 2025-3-30 12:45

作者: 洞穴    時(shí)間: 2025-3-30 20:03

作者: 拋射物    時(shí)間: 2025-3-30 21:27
Galileo Galilei and His Successorslcium ion cross-linking for printability of the gel, secondary calcium ion cross-linking for rigidity of the alginate hydrogel immediately after printing, and tertiary barium ion cross-linking for the long-term stability of the alginate hydrogel in the culture medium.
作者: 寄生蟲    時(shí)間: 2025-3-31 03:56
Synthesis of an UV-Curable Divinyl-Fumarate Poly-ε-Caprolactone for Stereolithography Applications(VPCLF). Moreover, a catalyst based on Al, instead of the most popular Tin(II) 2-ethylhexanoate, has been employed to reduce the cytotoxicity of the material. VPCLF has been successfully used, in combination with N-vinyl-pyrrolidone (NVP), to fabricate 3D porous scaffolds by micro-stereolithography (μ-SL) with mathematically defined architectures.




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