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The understanding of the mechanisms resulting in coating delamination allows the development of materials that can prolong component life.
New advances in bone tissue engineering (BTE) demand the development of materials that can not only replace bone, but also regenerate the damaged tissue based on external or even internal stimulus.
From initial work on the development of materials that are tolerated in the physiological environment, emphasis has now shifted towards the use of ceramic materials that interact with bone tissue by forming a direct bond.
Targeted gene delivery relies on the development of materials that allow for the formation of small neutrally charged particles of sufficient colloidal stability preventing non-specific interactions with cells.
Down the road, the approach could lead to new ways to create self-healing plastics and to the development of materials that give off warnings before they fail.
This particular research is still in the fundamental stage, but a potential application could include the development of materials that emulate these skills.
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The ease of substitution has led to the development of a broad class of materials that have been studied for numerous biomedical applications including as scaffold materials for tissue engineering and regenerative medicine.
Since it is still unclear to what extent these collections represent an unbiased sample of the worldwide genetic variation, further broad studies of grapevine germplasm are required, as well as the development of a manageable set of materials that will facilitate access to this variation.
A goal of neural tissue engineering is the development and evaluation of materials that guide neuronal growth and alignment.
Developments in the design of materials that function at the biological material interface address material biocompatibility and bioactive function.
As this cycle has some high temperature stages which indicate challenges of equipment materials, a study on these parts is essential to realize the entirety of the cycle, particularly on the development of equipment materials that may withstand the corrosion of the molten salt CuCl, which appears in a step of the Cu Cl cycle.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com