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纳米/生物技术中的纳米摩擦学与纳米力学

Nanotribology and nanomechanics in nano/biotechnology.

作者信息

Bhushan Bharat

机构信息

Nanotribology Laboratory for Information Storage and MEMS/NEMS, The Ohio State University, 201 West 19th Avenue, Columbus, OH 43210-1142, USA.

出版信息

Philos Trans A Math Phys Eng Sci. 2008 May 13;366(1870):1499-537. doi: 10.1098/rsta.2007.2170.

DOI:10.1098/rsta.2007.2170
PMID:18192166
Abstract

Owing to larger surface area in micro/nanoelectromechanical systems (MEMS/NEMS), surface forces such as adhesion, friction, and meniscus and viscous drag forces become large when compared with inertial and electromagnetic forces. There is a need to develop lubricants and identify lubrication methods that are suitable for MEMS/NEMS. For BioMEMS/BioNEMS, adhesion between biological molecular layers and the substrate, and friction and wear of biological layers may be important, and methods to enhance adhesion between biomolecules and the device surface need to be developed. There is a need for development of a fundamental understanding of adhesion, friction/stiction, wear, the role of surface contamination and environment, and lubrication. MEMS/NEMS materials need to exhibit good mechanical and tribological properties on the micro/nanoscale. Most mechanical properties are known to be scale dependent. Therefore, the properties of nanoscale structures need to be measured. Component-level studies are required to provide a better understanding of the tribological phenomena occurring in MEMS/NEMS. The emergence of micro/nanotribology and atomic force microscopy-based techniques has provided researchers with a viable approach to address these problems. This paper presents an overview of micro/nanoscale adhesion, friction, and wear studies of materials and lubrication studies for MEMS/NEMS and BioMEMS/BioNEMS. It also presents a review of scale-dependent mechanical properties, and stress and deformation analysis of nanostructures.

摘要

由于微纳机电系统(MEMS/NEMS)具有较大的表面积,与惯性力和电磁力相比,诸如粘附力、摩擦力、弯月面力和粘性阻力等表面力会变得很大。因此,需要开发适用于MEMS/NEMS的润滑剂并确定润滑方法。对于生物微机电系统/生物纳机电系统(BioMEMS/BioNEMS),生物分子层与基底之间的粘附力以及生物层的摩擦和磨损可能很重要,需要开发增强生物分子与器件表面之间粘附力的方法。有必要深入了解粘附力、摩擦/静摩擦力、磨损、表面污染和环境的作用以及润滑。MEMS/NEMS材料需要在微纳尺度上展现出良好的机械和摩擦学性能。大多数机械性能已知与尺度相关。因此,需要测量纳米级结构的性能。需要进行组件级研究,以更好地理解MEMS/NEMS中发生的摩擦学现象。微纳摩擦学和基于原子力显微镜的技术的出现,为研究人员解决这些问题提供了一种可行的方法。本文概述了MEMS/NEMS和BioMEMS/BioNEMS材料的微纳尺度粘附力、摩擦力和磨损研究以及润滑研究。还综述了与尺度相关的机械性能以及纳米结构的应力和变形分析。

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Nanotribology and nanomechanics in nano/biotechnology.纳米/生物技术中的纳米摩擦学与纳米力学
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引用本文的文献

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Global nanotribology research output (1996-2010): a scientometric analysis.全球纳米摩擦学研究产出(1996 - 2010年):一项科学计量分析。
PLoS One. 2013 Dec 5;8(12):e81094. doi: 10.1371/journal.pone.0081094. eCollection 2013.
2
Tailoring molecular layers at metal surfaces.在金属表面剪裁分子层。
Nat Chem. 2010 Feb;2(2):87-95. doi: 10.1038/nchem.517. Epub 2010 Jan 22.