Kalinin Arseny, Atepalikhin Valentin, Pakhomov Oleg, Kholkin Andrei L, Tselev Alexander
NT-MDT Spectrum Instruments, Moscow 124460, Russia; Department of Physical and Quantum Electronics, Moscow Institute of Physics and Technology, Dolgoprudny, Moscow Region 141701, Russia.
NT-MDT Spectrum Instruments, Moscow 124460, Russia.
Ultramicroscopy. 2018 Feb;185:49-54. doi: 10.1016/j.ultramic.2017.11.009. Epub 2017 Nov 21.
Nondestructive scanning probe microscopy of fragile nanoscale objects is currently in increasing need. In this paper, we report a novel atomic force microscopy mode, HybriD Piezoresponse Force Microscopy (HD-PFM), for simultaneous nondestructive analysis of piezoresponse as well as of mechanical and dielectric properties of nanoscale objects. We demonstrate this mode in application to self-assembled diphenylalanine peptide micro- and nanotubes formed on a gold-covered substrate. Nondestructive in- and out-of-plane piezoresponse measurements of tubes of less than 100 nm in diameter are demonstrated for the first time. High-resolution maps of tube elastic properties were obtained simultaneously with HD-PFM. Analysis of the measurement data combined with the finite-elements simulations allowed quantification of tube Young's modulus. The obtained value of 29 ± 1 GPa agrees well with the data obtained with other methods and reported in the literature.
目前,对易碎纳米级物体进行无损扫描探针显微镜检测的需求日益增加。在本文中,我们报告了一种新型原子力显微镜模式,即混合压电力显微镜(HD-PFM),用于对纳米级物体的压电响应以及机械和介电性能进行同步无损分析。我们展示了这种模式在应用于在金覆盖衬底上形成的自组装二苯丙氨酸肽微管和纳米管时的情况。首次展示了对直径小于100 nm的管进行无损面内和面外压电响应测量。通过HD-PFM同时获得了管弹性性能的高分辨率图谱。将测量数据与有限元模拟相结合进行分析,从而能够对管的杨氏模量进行量化。所获得的29±1 GPa的值与通过其他方法获得并在文献中报道的数据非常吻合。