Shang Hongxing, Sheng Tang, Dong Huiting, Wu Yihan, Ma Qianqian, Zhang Xin, Lv Lingtong, Cao Hongyu, Deng Feng, Liang Xu, Hu Shuling, Shen Shengping
State Key Laboratory for Strength and Vibration of Mechanical Structures, School of Aerospace Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, China.
Proc Natl Acad Sci U S A. 2024 Dec 3;121(49):e2414500121. doi: 10.1073/pnas.2414500121. Epub 2024 Nov 26.
Ordered polar structures in oxide nanofilms play a pivotal role in the development of nanoelectronic applications. Hitherto, ordered polar structures have been restricted to a limited number of ferroelectric materials, and there is no effective scheme to induce and manipulate ordered polar patterns in centrosymmetric nonpolar nanofilms due to the absence of spontaneous symmetry breaking. Here, we circumvent these limitations by utilizing the wrinkle-induced strain gradient modulation associated with flexoelectricity as a general means of inducing and manipulating ordered polar patterns in nonpolar nanofilms. Leveraging the surface instability caused by strain mismatch between oxide nanofilms and pre-strained compliant substrate, we successfully fabricate striped SrTiO wrinkles, where well-ordered strain gradients and corresponding periodic polar patterns are readily achieved. Through in-situ piezoresponse force microscopy experiments, we show that the generated polar patterns can be manipulated by varying strain boundaries. Furthermore, the atomistic resolution images and first-principles calculations reveal that such wrinkle-induced ordered polar patterns primarily emerge from the flexoelectric coupling between the local polarization and strain gradients. These findings provide implications for manipulating polar structures by strain gradient and flexoelectric engineering, which in turn enable the realization of nontrivial polar structures in a broader range of materials.
氧化物纳米薄膜中的有序极性结构在纳米电子应用的发展中起着关键作用。迄今为止,有序极性结构仅限于少数铁电材料,由于缺乏自发对称性破缺,在中心对称非极性纳米薄膜中没有有效的方案来诱导和操纵有序极性图案。在此,我们通过利用与挠曲电相关的皱纹诱导应变梯度调制作为在非极性纳米薄膜中诱导和操纵有序极性图案的通用方法,规避了这些限制。利用氧化物纳米薄膜与预应变柔性衬底之间的应变失配引起的表面不稳定性,我们成功制备了条纹状的SrTiO皱纹,其中很容易实现有序的应变梯度和相应的周期性极性图案。通过原位压电力显微镜实验,我们表明可以通过改变应变边界来操纵所产生的极性图案。此外,原子分辨率图像和第一性原理计算表明,这种皱纹诱导的有序极性图案主要源于局部极化与应变梯度之间的挠曲电耦合。这些发现为通过应变梯度和挠曲电工程操纵极性结构提供了启示,进而能够在更广泛的材料中实现非平凡的极性结构。