Yangchen He, Jessica Kienbaum, Wuzhang Fang, Hongrui Ma, Ying Wang, Ping Yuan, Daniel A Rhodes
Strain is a powerful tool for tuning the electronic, magnetic, and topological properties of 2D materials - particularly at high values of strain ( > 3 % ) where many electronic, magnetic, and structural transitions are predicted. However, most approaches to straining 2D materials are limited below 1.5%, with poor repeatability when cycling strain and low strain transfer upon cooling. Here, we report a high-yield sample preparation and device strain platform that overcomes these limitations, enabling repeatable and reversible strain tuning up to the intrinsic strain-to-failure of the materials tested herein. We furthe r use this platform to controllably design uniform linear strain gradients, revealing a novel route for investigating flexoelectric and flexomagnetic phenomena. Using CrSBr as a standard for gauging strain, we demonstrate uniform uniaxial strain, up to ∼ 4%, with negligible slippage and linear strain gradients of up to 0.06%/ μ m . Our strain approach is applicable to a broad class of 2D materials, as validated by its performance for three different phases of transition metal dichalcogenides: 2H- MoTe 2 , 1 T ' - MoTe 2 and T d - WTe 2 . In T d - WTe 2 , we show for the first time splitting of the A 1 3 and A 1 2 modes, starting at 2% strain, and record-breaking strain up to 5.5% strain.