Phase Transformation in TiNi Nano-Wafers for Nanomechanical Devices with Shape Memory Effect

Author:

Kartsev AlexeyORCID,Lega Peter V.ORCID,Orlov Andrey P.ORCID,Pavlov Alexander I.,von Gratowski SvetlanaORCID,Koledov Victor V.,Ilin Alexei S.

Abstract

Recently, Ti-Ni based intermetallic alloys with shape memory effect (SME) have attracted much attention as promising functional materials for the development of record small nanomechanical tools, such as nanotweezers, for 3D manipulation of the real nano-objects. The problem of the fundamental restrictions on the minimal size of the nanomechanical device with SME for manipulation is connected with size effects which are observed in small samples of Ti-Ni based intermetallic alloys with thermoplastic structural phase transition from austenitic high symmetrical phase to low symmetrical martensitic phase. In the present work, by combining density functional theory and molecular dynamics modelling, austenite has been shown to be more stable than martensite in nanometer-sized TiNi wafers. In this case, the temperature of the martensitic transition asymptotically decreases with a decrease in the plate thickness h, and the complete suppression of the phase transition occurs for a plate with a thickness of 2 nm, which is in qualitative agreement with the experimental data. Moreover, the theoretical values obtained indicate the potential for even greater minimization of nanomechanical devices based on SME in TiNi.

Funder

Russian Foundation for Basic Research

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Effect of the Crystallographic Orientation on the Phase Transition in a Finite TiNi Shape Memory Alloy Plate;Journal of Communications Technology and Electronics;2023-10

2. Effect of crystallographic orientation on the phase transition of a finite TiNi shape memory alloy wafer.;Радиотехника и электроника;2023-10-01

3. Martensitic Phase Transition in TiNi Thin Plates with Different Surface Crystallographic Orientations;2023 IEEE International Conference on Manipulation, Manufacturing and Measurement on the Nanoscale (3M-NANO);2023-07-31

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