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Length effect on creep of silicon cantilever microbeams

机译:长度对硅悬臂微梁蠕变的影响

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Creep behavior is very important to reliability of micromechanical components. Therefore, there are some emerging research efforts that focus on creep of silicon. However, few have focused on interaction among microscale dimension effect, temperature, and applied stress, which are more crucial to microelectrical mechanical system components compared with regular size components. This paper presents investigation of creep of single crystal silicon cantilever microbeams with a specific focus on the length effect. Results are presented characterizing the creep behavior in the length range of 300-700 mu m, the temperature range of 600-700?, and the stress range of 235-501MPa. As the temperature or stress increases, the creep rate of silicon increases and duration of the steady-state creep decreases. Creep rate decreases with the increase of microbeam length. At 600?, creep rupture lifetime approximately increases with the increase of microbeam length. At 700?, maximum lifetime shifts to medium length of 400 mu m. Factors that influence rupture lifetime include short beam effect, defect distribution, stress, temperature, and brittleness caused by oxidation. To summarize, creep failure modes for short beam and long beam are, respectively, dislocation motion by multiple slip systems and single slip system.
机译:蠕变行为对于微机械部件的可靠性非常重要。因此,有一些新兴的研究工作集中在硅的蠕变上。但是,很少有人关注微尺度尺寸效应,温度和施加应力之间的相互作用,与常规尺寸的组件相比,微尺度尺寸效应,温度和施加的应力对微机电系统组件更为关键。本文介绍了单晶硅悬臂微梁的蠕变研究,重点是长度效应。结果表明,在300-700μm的长度范围,600-700°C的温度范围和235-501MPa的应力范围内,蠕变行为具有特征性。随着温度或应力的增加,硅的蠕变速率增加,稳态蠕变的持续时间减少。蠕变速率随着微束长度的增加而降低。在600℃时,蠕变断裂寿命随着微束长度的增加而大约增加。在700?时,最大寿命变为400微米的中等长度。影响断裂寿命的因素包括短束效应,缺陷分布,应力,温度和氧化引起的脆性。总而言之,短梁和长梁的蠕变破坏模式分别是多滑移系统和单滑移系统的错位运动。

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