论文标题

商用压电器演员的低温和高磁场性能通过$激光干涉探测$

Low temperature and high magnetic field performance of a commercial piezo-actuator probed $via$ laser interferometry

论文作者

Adhikari, R., Doesinger, K., Linder, P., Faina, B., Bonanni, A.

论文摘要

扫描探针显微镜,扫描隧道光谱,点接触光谱和点接触光谱谱的田地进展,以研究低温条件下常规和量子材料在低温条件下的特性,促使纳米置源器和纳米机器人的发展具有增强的空间分辨率。压电电动堆栈作为具有工作笔触的纳米灵敏剂$> 100〜μ \ mathrm {m} $和定位分辨率$ \ sim $(1-10)nm对于基础研究和工业应用都是值得的。但是,有关大多数商业压电剂在低温环境中的性能以及在有超过5 \的磁场存在下的信息,通常不可用。特别是,在低温温度下,压电置换的大小,速率和相关滞后是最相关的参数,可以确定是否可以将特定的压电分子传动剂用作纳米定位剂。在这里,基于干涉技术的实验设置的设计和实现,以在$ 2〜 \ mathrm {k} \ leq {t} \ leq260〜 \ mathrm {k} $ 2〜 \ mathrm {k} \ leq {t} \ leq {k} $ 2〜 \ mathrm {k} \ leq {k} $中表征商业压电量的特征。在室温下,研究的压电量动剂的最大位移为$ 30〜μ \ MATHRM {M} $,最大驾驶电压为75 \,V,可将$ 1.2〜μ \ Mathrm {m Mathrm {m Mathrm {m} $降低,绝对$ \ weep(9.1 \ pm3.333) $ t = 2 \,\ mathrm {k} $。显示磁场对所研究的压电散布堆栈的压电性能没有实质性影响。

The advances in the fields of scanning probe microscopy, scanning tunneling spectroscopy, point contact spectroscopy and point contact Andreev reflection spectroscopy to study the properties of conventional and quantum materials at cryogenic conditions have prompted the development of nanopositioners and nanoscanners with enhanced spatial resolution. Piezoelectric-actuator stacks as nanopositioners with working strokes $>100~μ\mathrm{m}$ and positioning resolution $\sim$(1-10) nm are desirable for both basic research and industrial applications. However, information on the performance of most commercial piezoelectric-actuators in cryogenic environment and in the presence of magnetic fields in excess of 5\,T is generally not available. In particular, the magnitude, rate and the associated hysteresis of the piezo-displacement at cryogenic temperatures are the most relevant parameters that determine whether a particular piezoelectric-actuator can be used as a nanopositioner. Here, the design and realization of an experimental set-up based on interferometric techniques to characterize a commercial piezoelectric-actuator over a temperature range of $2~\mathrm{K}\leq{T}\leq260~\mathrm{K}$ and magnetic fields up to 6\,T is presented. The studied piezoelectric-actuator has a maximum displacement of $30~μ\mathrm{m}$ at room temperature for a maximum driving voltage of 75\,V, which reduces to $1.2~μ\mathrm{m}$ with an absolute hysteresis of $\left(9.1\pm3.3\right)~\mathrm{nm}$ at $T=2\,\mathrm{K}$. The magnetic field is shown to have no substantial effect on the piezo properties of the studied piezoelectric-actuator stack.

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