The scientific work in the project is divided into four overall work-packages. Below is the description of work performed within each workpackage.
WP1: Synthesis and Stacking of Membranes
Using Pulsed Laser Deposition (PLD), we produced millimeter-sized free-standing oxide membranes by optimizing strain through Ca doping in Sr₃Al2O₆ (SAO). We developed a robust protocol for crack-free membranes and investigated the growth modes of SrTiO₃ and LSMO on SAO layers. The membranes are then released, transferred, and stacked into new heterostructures with a patented alignment process, enabling tunable electronic, magnetic, and optical properties.
WP2: Structural and Electrical Characterization
We created bistable membranes from strain relaxation, which exhibit out-of-plane buckling influenced by cavity geometry, impacting piezoelectric responses. Magnetic tests on LSMO membranes showed stable ferromagnetism with a Curie temperature above 320 K. Elastic softening was measured via Brillouin scattering, revealing fundamental 2D effects critical for mechanical applications.
WP3: Strain-Mediated Property Enhancement
1. Step-edge-induced structural modulations in BaTiO3 (BTO) membranes: In this study, we investigated the structural modulations in freestanding BTO membranes caused by strain from one-unit-cell step-edges appearing when these membranes adhere to substrates. Using X-ray nanobeam in a MAX IV synchrotron in Lund, we examined the (020) Bragg peak with a spatial resolution of 50 nm across varying temperatures. 2. We developed a mechanical on-chip test platform capable of in-situ transmission electron microscopy (TEM) investigations to study the deformation mechanisms in freestanding thin films under various conditions. This technology could lead to insights into size-dependent effects on mechanical properties. 3. An automatic strain control system was implemented to study the relationship between strain and electronic conductivity in oxide heterointerfaces. This platform enables real-time characterization of not only conductivity but also other properties like piezoelectricity and magnetization.
WP4: Computational Interface Design
1. We employed an automated computational workflow to examine interfacial structures and Moiré patterns. Our state-of-the-art graph neural network achieved precision comparable to density functional theory, effectively studying the impact of varying orientations and surface terminations on material properties. 2. In-Operando Strain Variation Tool: The second methodology involves a new strainer designed for in-operando studies that allows continuous variation of strain across a wide temperature range. This unique tool operates down to millikelvin temperatures without requiring substrate changes. The strain is monitored with high accuracy using the capacitance of a strain gauge located beneath the sample.
The most significant achievement has been the development of a novel method for accurately twisting oxide membranes while ensuring that the interfaces between the membranes remain clean. The successful fabrication, stacking, and twisting of these membranes is a critical challenge for the NEXUS project. Our current methodology enables us to produce twisted membranes with high accuracy and reproducibility. This progress is encouraging, and we are now focusing on applying this methodology to study a wide variety of materials. This approach is currently under patent application.
Overall, new methods have been developed to realize freestanding oxide membranes [Annalen der Physik, (2022)]. Inspired by the developments in freestanding oxide membranes, we create a new platform for reassembling these ultrathin freestanding oxide membranes and twisting them into artificial heterointerfaces [Adv. Mat. (2022)]. Twisting provides a fundamentally new platform radically different from the current single freestanding approach [APL Mat., (2024)], which also allows strain engineering [Small (2024)].