Nanoindentation of Si Nanostructures: Buckling and Friction at Nanoscales
نویسندگان
چکیده
A nanoindentation system was employed to characterize mechanical properties of silicon nanolines (SiNLs), which were fabricated by an anisotropic wet etching (AWE) process. The SiNLs had the linewidth ranging from 24 nm to 90 nm, having smooth and vertical sidewalls and the aspect ratio (height/linewidth) from 7 to 18. During indentation, a buckling instability was observed at a critical load, followed by a displacement burst without a load increase, then a full recovery of displacement upon unloading. This phenomenon was explained by two bucking modes. It was also found that the difference in friction at the contact between the indenter and SiNLs directly affected buckling response of these nanolines. The friction coefficient was estimated to be in a range of 0.02 to 0.05. For experiments with large indentation displacements, irrecoverable indentation displacements were observed due to fracture of Si nanolines, with the strain to failure estimated to be from 3.8% to 9.7%. These observations indicated that the buckling behavior of SiNLs depended on the combined effects of load, line geometry, and the friction at contact. This study demonstrated a valuable approach to fabrication of well-defined Si nanoline structures and the application of the nanoindentation method for investigation of their mechanical properties at the nanoscale.
منابع مشابه
Indentation of single-crystal silicon nanolines: Buckling and contact friction at nanoscales
friction at nanoscales Bin Li, Qiu Zhao, Huai Huang, Zhiquan Luo, Min K. Kang, Jang-Hi Im, Richard A. Allen, Michael W. Cresswell, Rui Huang, and Paul S. Ho Microelectronics Research Center, The University of Texas at Austin, Bldg. 160, 10100 Burnet Road, Austin, Texas 78758, USA Department of Aerospace Engineering and Engineering Mechanics, University of Texas, Austin, Texas 78712, USA Semicon...
متن کاملFabrication and characterization of patterned single-crystal silicon nanolines.
This letter demonstrates a method for fabricating single-crystal Si nanolines, with rectangular cross sections and nearly atomically flat sidewalls. The high quality of these nanolines leads to superb mechanical properties, with the strain to fracture measured by nanoindentation tests exceeding 8.5% for lines of 74 nm width. A large displacement burst before fracture was observed, which is attr...
متن کاملFriction and wear behavior of ultra-high molecular weight polyethylene as a function of polymer crystallinity.
In this study the friction, wear and surface mechanical behavior of medical-grade ultra-high molecular weight polyethylene (UHMWPE) (GUR 1050 resin) were evaluated as a function of polymer crystallinity. Crystallinity was controlled by heating UHMWPE to a temperature above its melting point and varying the hold time and cooling rates. The degree of crystallinity of the samples was evaluated usi...
متن کاملMicro/Nanostructures and Mechanical Properties of Trabecular Bone in Ovariectomized Rats
Bone mechanical properties encompass both geometric and material factors, while the effects of estrogen deficiency on the material and structural characteristics of bone at micro- to nanoscales are still obscure. We performed a series of combined methodological experiments, including nanoindentation assessment of intrinsic material properties, atomic force microscopy (AFM) characterization of t...
متن کاملThe Analytic Technique and Experimental Research Methods of Post-buckling about Slender Rod Strings in Wellbore
The buckling behavior of rod strings in wellbore is one of the key issues in petroleum engineering. The slender rod strings in vertical wellbore were selected as research objects. Based on the energy method, the critical load formulas of sinusoidal and helical buckling were derived for the string with the bottom of the wellbore pressure. According to the sinusoidal and helical buckling’s geomet...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
دوره شماره
صفحات -
تاریخ انتشار 2011