Edge-induced excitations in Bi2Te3 from spatially-resolved electron energy-gain spectroscopy

被引:1
作者
La, Helena [1 ]
Brokkelkamp, Abel [1 ]
van der Lippe, Stijn [1 ]
Hoeve, Jaco ter [2 ,3 ]
Rojo, Juan [2 ,3 ]
Conesa-Boj, Sonia [1 ]
机构
[1] Delft Univ Technol, Kavli Inst Nanosci, NL-2628 CJ Delft, Netherlands
[2] Nikhef Theory Grp, Sci Pk 105, NL-1098 XG Amsterdam, Netherlands
[3] VU, Dept Phys & Astron, NL-1081 HV Amsterdam, Netherlands
基金
荷兰研究理事会;
关键词
Topological insulators; Bi2Te3; Electron energy-loss spectroscopy; Energy-gain peaks; Collective excitations; SURFACE-PLASMON MODES; SINGLE DIRAC CONE; TOPOLOGICAL-INSULATOR; VIBRATIONAL SPECTROSCOPY; EELS; BI2SE3; GAP;
D O I
10.1016/j.ultramic.2023.113841
中图分类号
TH742 [显微镜];
学科分类号
摘要
Among the many potential applications of topological insulator materials, their broad potential for the development of novel tunable plasmonics at THz and mid-infrared frequencies for quantum computing, terahertz detectors, and spintronic devices is particularly attractive. The required understanding of the intricate relationship between nanoscale crystal structure and the properties of the resulting plasmonic resonances remains, however, elusive for these materials. Specifically, edge-and surface-induced plasmonic resonances, and other collective excitations, are often buried beneath the continuum of electronic transitions, making it difficult to isolate and interpret these signals using techniques such as electron energy-loss spectroscopy (EELS). Here we focus on the experimentally clean energy-gain EELS region to characterise collective excitations in the topologically insulating material Bi2Te3 and correlate them with the underlying crystalline structure with nanoscale resolution. We identify with high significance the presence of a distinct energy-gain peak around -0.8 eV, with spatially-resolved maps revealing that its intensity is markedly enhanced at the edge regions of the specimen. Our findings illustrate the reach of energy-gain EELS analyses to accurately map collective excitations in quantum materials, a key asset in the quest towards new tunable plasmonic devices.
引用
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页数:8
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