Nature Reviews Materials aims to cover the making, measuring, modelling and manufacturing of materials - thus, looking at materials science throughout the pipeline of laboratory discovery to functional device.
Reviews and Perspectives are commissioned by the editorial team.
Research areas covered in the journal include:
Soft matter
Biomaterials, bio-inspired and biomedical materials
Optical, photonic and optoelectronic materials
Magnetic materials
Materials for electronics
Superconductors
Engineered and structural materials (metals, alloys, ceramics, composites)
Two-dimensional materials
Surfaces and thin films
Devices
Catalytic and separation materials
Energy materials
Materials for sustainable development
Nanotechnology
Modelling, simulation and materials theory
Synthesis, processing and characterization techniques
Manufacturing of materials.
John Wiley and Sons Ltd•ISSN: 2192-2640 / 2192-2659•Germany?
11
Clarivate IF
Advanced Healthcare Materials was first published as a special focus section in Advanced Materials in 2011 and launched as an independent journal in 2012. Advanced Healthcare Materials, which is listed in three ISI categories (Materials Science - Biomaterials, Engineering - Biomedical, and Nanoscience & Nanotechnology), received an impact factor of 6.270 in 2019 (source: Journal Citation Reports (Web of Science Group, 2019)).
Advanced Healthcare Materials is an international, interdisciplinary forum for peer-reviewed papers on high-impact materials, devices, and technologies for improving human health including:
Biomaterials, including nanomaterials, hydrogels, 2D materials, biopolymers, composites, biohybrids, biomimetics, as well as inorganic materials for biomedical applications.
Biointerfaces, such as antimicrobial surfaces and coatings, mechanobiology and biocompatibility studies, interfaces for cell engineering and stem cell differentiation, 3D cell culture, and immunoengineering.
Nanomedicine and nanotechnology with applications in drug delivery, imaging, theranostics, gene therapy, and immunotherapy, and for therapy of infectious diseases, cancer, metabolic diseases, and cardiovascular diseases, as well as for vaccines and precision medicine.
Tissue engineering and regenerative medicine including scaffolds and scaffold-free approaches. For example, for bone, ligament, and muscle tissue engineering; skin regeneration and wound healing; nerve grafts; cardiac patches; and tissue vascularization.
Biofabrication including (bio)inks and technologies, toward generation of functional tissues and organs.
Devices for healthcare applications, such as diagnostics, wearables, implantable devices, microfluidics, BioMEMS, organs-on-a-chip and lab-on-a-chip, bioelectronics, biosensors, actuators, and soft robotics.
Biofabrication focuses on cutting-edge research regarding the use of cells, proteins, biological materials and biomaterials as building blocks to manufacture biological systems and/or therapeutic products. Emphasis is on the development of fabrication technologies, modelling of the fabricated constructs and maturation of biofabricated objects towards the intended tissue types. It includes the following topics:
Cell, tissue and organ printing, patterning and assembly
for in vitro cell models and tissue models
for tissue precursors, analogs and substitutes
as disease models
as drug/toxicological screening models
Biofabricated cell/biological material-integrated systems and medical devices
biochips and biosensors
cell-laden microfluidic devices
cell/tissue/lab/organ-on-a-chip
Novel 3D tissue scaffold fabrication
convergence of (bio)fabrication technologies
novel processes for complex scaffolds and surface engineering
bioactive and bioinspired tissue scaffolds
engineering 'active and reactive' interfaces within hierarchical structures
direct and indirect fabrication methods...etc.