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采用纳米压痕技术测量磁场可调镍单晶的小尺度力学性能。

Magnetic field tunable small-scale mechanical properties of nickel single crystals measured by nanoindentation technique.

机构信息

State Key Laboratory for Turbulence and Complex Systems, College of Engineering, Peking University, Beijing 100871, China.

出版信息

Sci Rep. 2014 Apr 3;4:4583. doi: 10.1038/srep04583.

Abstract

Nano- and micromagnetic materials have been extensively employed in micro-functional devices. However, measuring small-scale mechanical and magnetomechanical properties is challenging, which restricts the design of new products and the performance of smart devices. A new magnetomechanical nanoindentation technique is developed and tested on a nickel single crystal in the absence and presence of a saturated magnetic field. Small-scale parameters such as Young's modulus, indentation hardness, and plastic index are dependent on the applied magnetic field, which differ greatly from their macroscale counterparts. Possible mechanisms that induced 31% increase in modulus and 7% reduction in hardness (i.e., the flexomagnetic effect and the interaction between dislocations and magnetic field, respectively) are analyzed and discussed. Results could be useful in the microminiaturization of applications, such as tunable mechanical resonators and magnetic field sensors.

摘要

纳米和微磁材料已广泛应用于微功能器件中。然而,测量小尺度的力学和磁力学性能具有挑战性,这限制了新产品的设计和智能设备的性能。本文开发了一种新的磁力学纳米压痕技术,并在不存在和存在饱和磁场的情况下对镍单晶进行了测试。小尺度参数,如杨氏模量、压痕硬度和塑性指数,取决于所施加的磁场,与宏观尺度的参数有很大的不同。分别分析和讨论了导致模量增加 31%和硬度降低 7%(即挠曲磁效应和位错与磁场相互作用)的可能机制。研究结果对于可调谐机械谐振器和磁场传感器等应用的微小型化可能有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/524a/3974134/1476f79ab3ea/srep04583-f1.jpg

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