太赫兹辐射
超短脉冲
等离子体子
纳米尺度
物理
光电子学
光子学
石墨烯
宽带
纳米技术
光学
材料科学
激光器
作者
Jacob Pettine,Prashant Padmanabhan,Teng Shi,Lauren Gingras,Luke McClintock,Chun‐Chieh Chang,Kevin W. C. Kwock,Long Yuan,Yue Huang,John Nogan,Jon K. Baldwin,P. Adel,Ronald Holzwarth,Abul K. Azad,F. Ronning,Antoinette J. Taylor,Rohit P. Prasankumar,Shi‐Zeng Lin,Hou‐Tong Chen
出处
期刊:Nature
[Springer Nature]
日期:2024-02-07
被引量:6
标识
DOI:10.1038/s41586-024-07037-4
摘要
Abstract Controlled charge flows are fundamental to many areas of science and technology, serving as carriers of energy and information, as probes of material properties and dynamics 1 and as a means of revealing 2,3 or even inducing 4,5 broken symmetries. Emerging methods for light-based current control 5–16 offer particularly promising routes beyond the speed and adaptability limitations of conventional voltage-driven systems. However, optical generation and manipulation of currents at nanometre spatial scales remains a basic challenge and a crucial step towards scalable optoelectronic systems for microelectronics and information science. Here we introduce vectorial optoelectronic metasurfaces in which ultrafast light pulses induce local directional charge flows around symmetry-broken plasmonic nanostructures, with tunable responses and arbitrary patterning down to subdiffractive nanometre scales. Local symmetries and vectorial currents are revealed by polarization-dependent and wavelength-sensitive electrical readout and terahertz (THz) emission, whereas spatially tailored global currents are demonstrated in the direct generation of elusive broadband THz vector beams 17 . We show that, in graphene, a detailed interplay between electrodynamic, thermodynamic and hydrodynamic degrees of freedom gives rise to rapidly evolving nanoscale driving forces and charge flows under the extremely spatially and temporally localized excitation. These results set the stage for versatile patterning and optical control over nanoscale currents in materials diagnostics, THz spectroscopies, nanomagnetism and ultrafast information processing.
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