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Showing 1 to 5 of 5 entries
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Tissue engineering: perspectives, challenges, and future directions.

Tissue engineering

Langer R.
PMID: 17518575
Tissue Eng. 2007 Jan;13(1):1-2. doi: 10.1089/ten.2006.0219.

No abstract available.

Strain-engineered manufacturing of freeform carbon nanotube microstructures.

Nature communications

De Volder M, Park S, Tawfick S, Hart AJ.
PMID: 25072599
Nat Commun. 2014 Jul 29;5:4512. doi: 10.1038/ncomms5512.

The skins of many plants and animals have intricate microscale surface features that give rise to properties such as directed water repellency and adhesion, camouflage, and resistance to fouling. However, engineered mimicry of these designs has been restrained by...

Nanofluidics in two-dimensional layered materials: inspirations from nature.

Chemical Society reviews

Gao J, Feng Y, Guo W, Jiang L.
PMID: 28722059
Chem Soc Rev. 2017 Aug 29;46(17):5400-5424. doi: 10.1039/c7cs00369b.

With the advance of chemistry, materials science, and nanotechnology, significant progress has been achieved in the design and application of synthetic nanofluidic devices and materials, mimicking the gating, rectifying, and adaptive functions of biological ion channels. Fundamental physics and...

Bio-mimic multichannel microtubes by a facile method.

Journal of the American Chemical Society

Zhao Y, Cao X, Jiang L.
PMID: 17243804
J Am Chem Soc. 2007 Jan 31;129(4):764-5. doi: 10.1021/ja068165g.

No abstract available.

Decentralized manufacturing for biomimetics through cooperation of digitization and nanomaterial design.

Nanoscale

Xiao M, Yang H, Xiao Q, Zhang H, Chen X.
PMID: 31281908
Nanoscale. 2019 Oct 25;11(41):19179-19189. doi: 10.1039/c9nr00667b.

The blooming development of biomimetics has demonstrated infinite possibilities in providing solutions for our technical or engineering problems. Therefore, it makes sense to develop an efficient manufacturing system for biomimetic products to transfer biological techniques to engineering. Compared with...

Showing 1 to 5 of 5 entries