论文标题
纳米梁夹紧进行了重新审视
Nano-beam clamping revisited
论文作者
论文摘要
近年来,纳米力学领域已经在各种应用中多样化,从量子信息处理到生物分子识别。如今,在产生的设备多样性中,最简单的(但通用性)的元素仍然是双偏光的光束:它可以储存非常巨大的拉伸应力(产生高共振频率$ f_0 $和质量因子$ q $),与电动设置相互互动(通过导电层)可以互动(可以在清洁室中产生乘坐型),包括乘坐量身标准的设计。此外,其机械性能是最简单的描述。共振频率和$ q $ s正在建模中,并以``软夹紧''和````phonon shield''''的超高质量共振而建模。在这里,我们证明了基本纳米梁夹紧区域的制造材料降低了``天然软夹具''的``自然''。我们介绍了能够拟合实验数据的分析理论,该理论可用于$ \ {q,f_0 \} $ design:除了有限元建模验证之外,提出的表达式还提供了对现象的深刻理解,并具有Q增强和向下频率转移。
Within recent years, the field of nano-mechanics has diversified in a variety of applications, ranging from quantum information processing to biological molecules recognition. Among the diversity of devices produced these days, the simplest (but versatile) element remains the doubly-clamped beam: it can store very large tensile stresses (producing high resonance frequencies $f_0$ and quality factors $Q$), is interfaceable with electric setups (by means of conductive layers), and can be produced easily in clean rooms (with scalable designs including multiplexing). Besides, its mechanical properties are the simplest to describe. Resonance frequencies and $Q$s are being modeled, with as specific achievement the ultra-high quality resonances based on ``soft clamping'' and ``phonon shields''. Here, we demonstrate that the fabrication undercut of the clamping regions of basic nano-beams produces a ``natural soft clamping'', given for free. We present the analytic theory that enables to fit experimental data, which can be used for $\{ Q , f_0 \}$ design: beyond Finite Element Modeling validation, the presented expressions provide a profound understanding of the phenomenon, with both a Q enhancement and a downwards frequency shift.