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From Protein Building Blocks to Functional Materials | ACS Nano
From Protein Building Blocks to Functional Materials | ACS Nano

Frontiers | Advances in Engineering Human Tissue Models
Frontiers | Advances in Engineering Human Tissue Models

Materials Science & Engineering C | Scholars Portal Journals
Materials Science & Engineering C | Scholars Portal Journals

Chemical boundary engineering: A new route toward lean, ultrastrong yet  ductile steels | Science Advances
Chemical boundary engineering: A new route toward lean, ultrastrong yet ductile steels | Science Advances

Science and Engineering of Composite Materials
Science and Engineering of Composite Materials

REVIEWS ON ADVANCED MATERIALS SCIENCE
REVIEWS ON ADVANCED MATERIALS SCIENCE

Direct printing of functional 3D objects using polymerization-induced phase  separation | Nature Communications
Direct printing of functional 3D objects using polymerization-induced phase separation | Nature Communications

Electrospun Janus nanofibers loaded with a drug and inorganic nanoparticles  as an effective antibacterial wound dressing - ScienceDirect
Electrospun Janus nanofibers loaded with a drug and inorganic nanoparticles as an effective antibacterial wound dressing - ScienceDirect

Journal of Materials Chemistry C
Journal of Materials Chemistry C

PDF) Morphological Evaluation of Fibroblasts on Bacterial Cellulose  Hydrogels | Paulo S Dias - Academia.edu
PDF) Morphological Evaluation of Fibroblasts on Bacterial Cellulose Hydrogels | Paulo S Dias - Academia.edu

Materials Science and Engineering: C | Journal | ScienceDirect.com by  Elsevier
Materials Science and Engineering: C | Journal | ScienceDirect.com by Elsevier

Using Machine Learning and Data Mining to Leverage Community Knowledge for  the Engineering of Stable Metal–Organic Frameworks | Journal of the  American Chemical Society
Using Machine Learning and Data Mining to Leverage Community Knowledge for the Engineering of Stable Metal–Organic Frameworks | Journal of the American Chemical Society

Materials Science and Engineering C
Materials Science and Engineering C

Exploring and Engineering the Cell Surface Interface | Science
Exploring and Engineering the Cell Surface Interface | Science

Cathode Materials: Sur‐/Interface Engineering of Hierarchical  LiNi0.6Mn0.2Co0.2O2@LiCoPO4@Graphene Architectures as Promising  High‐Voltage Cathodes toward Advanced Li‐Ion Batteries (Adv. Mater.  Interfaces 14/2017) - Liang - 2017 - Advanced Materials ...
Cathode Materials: Sur‐/Interface Engineering of Hierarchical LiNi0.6Mn0.2Co0.2O2@LiCoPO4@Graphene Architectures as Promising High‐Voltage Cathodes toward Advanced Li‐Ion Batteries (Adv. Mater. Interfaces 14/2017) - Liang - 2017 - Advanced Materials ...

Frontiers | Vascular Tissue Engineering: Challenges and Requirements for an  Ideal Large Scale Blood Vessel
Frontiers | Vascular Tissue Engineering: Challenges and Requirements for an Ideal Large Scale Blood Vessel

Frontiers | 3D and 4D Printing of Polymers for Tissue Engineering  Applications
Frontiers | 3D and 4D Printing of Polymers for Tissue Engineering Applications

Plasma-Activated Polyvinyl Alcohol Foils for Cell Growth - Document - Gale  Academic OneFile
Plasma-Activated Polyvinyl Alcohol Foils for Cell Growth - Document - Gale Academic OneFile

Journal of Materials Science - Wikipedia
Journal of Materials Science - Wikipedia

Materials science | Definition, Types, Study, & Facts | Britannica
Materials science | Definition, Types, Study, & Facts | Britannica

PDF) Quasi-static Torsional Deformation Behavior of Porous Ti6Al4V alloy
PDF) Quasi-static Torsional Deformation Behavior of Porous Ti6Al4V alloy

PDF) Comparison of electrical conductivities of various brain phantom gels:  Developing a 'Brain Gel Model'
PDF) Comparison of electrical conductivities of various brain phantom gels: Developing a 'Brain Gel Model'

Advanced Materials: Vol 34, No 4
Advanced Materials: Vol 34, No 4

2018年论文
2018年论文

Progress of Polysaccharide-Contained Polyurethanes for Biomedical  Applications | SpringerLink
Progress of Polysaccharide-Contained Polyurethanes for Biomedical Applications | SpringerLink