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학술저널
저자정보
Sinha, Arvind (Bio/Nano Technology Laboratory, Institute for Nanoscience & Engineering, University of Arkansas) Martin, Elizabeth M. (Bio/Nano Technology Laboratory, Institute for Nanoscience & Engineering, University of Arkansas) Lim, Ki-Taek (Bio/Nano Technology Laboratory, Institute for Nanoscience & Engineering, University of Arkansas) Carrier, Danielle Julie (Department of Biological & Agricultural Engineering, University of Arkansas, Fayetteville) Han, Haewook (Department of Electrical Engineering, Pohang University of Science & Technology) Zharov, Vladimir P. (Arkansas Nanomedicine Center, University of Arkansas for Medical Sciences) Kim, Jin-Woo (Bio/Nano Technology Laboratory, Institute for Nanoscience & Engineering, University of Arkansas)
저널정보
한국농업기계학회 바이오시스템공학(구 한국농업기계학회지) 바이오시스템공학 제40권 제4호
발행연도
2015.1
수록면
373 - 393 (21page)

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Background: Cellulose is a ubiquitous, renewable and environmentally friendly biopolymer, which has high promise to fulfil the rising demand for sustainable and biocompatible materials. Particularly, the recent progress in the synthesis of highly crystalline cellulose-based nanoscale biomaterials, namely cellulose nanocrystals (CNCs), draws significant attention from many research communities, ranging from bioresource engineering, to materials science and engineering, to biological and biomedical engineering to bionanotechnology. The feasibility of harnessing CNCs' unique biophysicochemical properties has inspired their basic and applied research, offering much promise for new biomaterials with diverse advanced functionalities. Purpose: This review focuses on vital issues and topics on the recent advances in CNC-based biomaterials with potential, in particular, for bionanotechnology and biological and biomedical engineering. The challenges and limitations of CNC technology are discussed as well as potential strategies to overcome them, providing an essential source of information in the exploration of possible and futuristic applications of the CNC-based functional "green" nanomaterials. Conclusion: CNCs offer exciting possibilities for advanced "green" nanomaterials, driving innovative research and development in a wide range of fields, including biological and biomedical engineering.

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