期刊论文详细信息
Optical manipulation of electronic dimensionality in a quantum material
Article
关键词: CHARGE-DENSITY-WAVE;    LIGHT-INDUCED SUPERCONDUCTIVITY;    TOTAL-ENERGY CALCULATIONS;    DOMAIN-WALLS;    SUPERLATTICE FORMATION;    PHASE;    TRANSITION;    SURFACE;    PLANE;    FERROELECTRICITY;   
DOI  :  10.1038/s41586-021-03643-8
来源: SCIE
【 摘 要 】

Exotic phenomena can be achieved in quantum materials by confining electronic states into two dimensions. For example, relativistic fermions are realized in a single layer of carbon atoms(1), the quantized Hall effect can result from two-dimensional (2D) systems(2,3), and the superconducting transition temperature can be considerably increased in a one-atomic-layer material(4,5). Ordinarily, a 2D electronic system can be obtained by exfoliating the layered materials, growing monolayer materials on substrates, or establishing interfaces between different materials. Here we use femtosecond infrared laser pulsesto invert the periodic lattice distortion sectionally in a three-dimensional (3D) charge density wave material (1T-TiSe2), creating macroscopic domain walls of transient 2D ordered electronic states with unusual properties. The corresponding ultrafast electronic and lattice dynamics are captured by time-resolved and angle-resolved photoemission spectroscopy(6) and ultrafast electron diffraction at energies of the order of megaelectronvolts(7). Moreover, in the photoinduced 2D domain wall near the surface we identify a phase with enhanced density of states and signatures of potential opening of an energy gap near the Fermi energy. Such optical modulation of atomic motion is an alternative path towards realizing 2D electronic states and will be a useful platform upon which novel phases in quantum materials may be discovered.

【 授权许可】

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