Guan Zhao, Wei Lu-Qi, Fan Wen-Cheng, Sun Yi-Chen, Cao Wei, Tian Ming, Wan Neng, Tong Wen-Yi, Chen Bin-Bin, Xiang Ping-Hua, Duan Chun-Gang, Zhong Ni
Key Laboratory of Polar Materials and Devices (Ministry of Education), Shanghai Center of Brain-Inspired Intelligent Materials and Devices, Department of Electronics, East China Normal University, Shanghai, 200241, China.
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing, 210009, China.
Nat Commun. 2025 Jan 24;16(1):986. doi: 10.1038/s41467-025-56073-9.
Moiré superlattices in two-dimensional stacks have attracted worldwide interest due to their unique electronic properties. A typical example is the moiré ferroelectricity, where adjacent moirés exhibit opposite spontaneous polarization that can be switched through interlayer sliding. However, in contrast to ideal regular ferroelectric moiré domains (equilateral triangles) built in most theoretical models, the unavoidable irregular moiré supercells (non-equilateral triangles) induced by external strain fields during the transfer process have been given less attention. Manipulation of controllable polarization evolutions is also a big challenge due to an interlinked network of polarized domains. In this study, we employ a sliding-disturb measurement to examine and modulate these irregular moirés via mechanical force. By introducing a curved substrate, the irregular moirés are fabricated, and three distinct types of moiré domains with different patterns are identified and modulated by external mechanical force disturbing. They exhibit reduced pinning forces when the shear direction is not aligned with the strain direction. The shift of the moirés is observed to be orthogonal to the shear direction. This work offers an effective pathway for the controlled switch of the polarization in interfacial ferroelectricity.
二维堆叠中的莫尔超晶格因其独特的电子特性而引起了全球关注。一个典型的例子是莫尔铁电性,其中相邻的莫尔条纹表现出相反的自发极化,可通过层间滑动来切换。然而,与大多数理论模型中构建的理想规则铁电莫尔畴(等边三角形)不同,转移过程中由外部应变场引起的不可避免的不规则莫尔超胞(非等边三角形)受到的关注较少。由于极化畴的相互连接网络,可控极化演化的操纵也是一个巨大挑战。在本研究中,我们采用滑动扰动测量法,通过机械力来检测和调制这些不规则莫尔条纹。通过引入弯曲衬底,制备出不规则莫尔条纹,并通过外部机械力扰动识别和调制出三种具有不同图案的不同类型的莫尔畴。当剪切方向与应变方向不平行时,它们表现出减小的钉扎力。观察到莫尔条纹的移动与剪切方向正交。这项工作为界面铁电体中极化的可控切换提供了一条有效途径。