Pawelec et al., 2014 - Google Patents
Ice-templated structures for biomedical tissue repair: From physics to final scaffoldsPawelec et al., 2014
View PDF- Document ID
- 93858137046274216
- Author
- Pawelec K
- Husmann A
- Best S
- Cameron R
- Publication year
- Publication venue
- Applied Physics Reviews
External Links
Snippet
Ice-templated structures for biomedical tissue repair: From physics to final scaffolds | Applied
Physics Reviews | AIP Publishing Skip to Main Content Umbrella Alt Text Umbrella Alt Text
Close Publishers AIP Publishing Physics Today Acoustical Society of America American …
- 230000017423 tissue regeneration 0 title description 3
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Pawelec et al. | Ice-templated structures for biomedical tissue repair: From physics to final scaffolds | |
Pawelec et al. | A design protocol for tailoring ice-templated scaffold structure | |
Joukhdar et al. | Ice templating soft matter: fundamental principles and fabrication approaches to tailor pore structure and morphology and their biomedical applications | |
Pawelec et al. | Understanding anisotropy and architecture in ice-templated biopolymer scaffolds | |
Wegst et al. | Biomaterials by freeze casting | |
Li et al. | Freeze casting of porous materials: review of critical factors in microstructure evolution | |
Jia et al. | Precise fabrication of open porous Mg scaffolds using NaCl templates: Relationship between space holder particles, pore characteristics and mechanical behavior | |
Nie et al. | Shish-kebab crystallites initiated by shear fracture in bulk polymers | |
Mok et al. | Emerging pulsed electric field (PEF) and static magnetic field (SMF) combination technology for food freezing | |
Kasper et al. | The freezing step in lyophilization: Physico-chemical fundamentals, freezing methods and consequences on process performance and quality attributes of biopharmaceuticals | |
Yuan et al. | Effects of the cooling mode on the structure and strength of porous scaffolds made of chitosan, alginate, and carboxymethyl cellulose by the freeze-gelation method | |
Pawelec et al. | Altering crystal growth and annealing in ice-templated scaffolds | |
Divakar et al. | Anisotropic freeze-cast collagen scaffolds for tissue regeneration: How processing conditions affect structure and properties in the dry and fully hydrated states | |
Genevro et al. | Freezing influence on physical properties of glucomannan hydrogels | |
Sheng et al. | Mechanical and thermal property characterization of poly-L-lactide (PLLA) scaffold developed using pressure-controllable green foaming technology | |
Zeinali et al. | Preparation and characterization of graphene oxide aerogel/gelatin as a hybrid scaffold for application in nerve tissue engineering | |
Sabzi et al. | Interconnected porous nanofibrous gelatin scaffolds prepared via a combined thermally induced phase separation/particulate leaching method | |
Pourhaghgouy et al. | Physical and mechanical properties of the fully interconnected chitosan ice‐templated scaffolds | |
Rouhollahi et al. | Effect of mold geometry on pore size in freeze-cast chitosan-alginate scaffolds for tissue engineering | |
Luo et al. | Porous nanoplate-like hydroxyapatite–sodium alginate nanocomposite scaffolds for potential bone tissue engineering | |
Christoph et al. | Ice-templating beet-root pectin foams: Controlling texture, mechanics and capillary properties | |
Warburton et al. | Freezing-modulated-crosslinking: A crosslinking approach for 3D cryoprinting | |
Ukpai et al. | A three-dimensional model for analysis and control of phase change phenomena during 3D printing of biological tissue | |
Sultana et al. | PHBV/PLLA-based composite scaffolds containing nano-sized hydroxyapatite particles for bone tissue engineering | |
Lee et al. | Fabrication of ferroelectric polymer nanocrystals with tunable morphologies |