Back to results

University of Arkansas

Applications of Cathodoluminescence in Plasmonic Nanostructures and Ultrathin InAs Quantum Layers

Abstract

dc:description.abstract

<p>Due to the advanced focusing ability, characterization methods based on the electron-beam excitation have been broadly applied to investigate nanomaterials. Structural or compositional information is commonly acquired using electron microscopes. Moreover, taking advantage of the super spatial resolution of the focused electron beam, optical properties of nanomaterials can be also obtained. Herein, general concepts and processes of the interaction between electrons and materials are studied. Two specific optical nanomaterials, including plasmonic nanostructures and semiconductor quantum layers, are investigated by the cathodoluminescence (CL) measurement. </p> <p>Surface plasmonic resonance can be generated when high-energy electrons strike the interface between the dielectric medium and plasmonic nanomaterials. It is found in our research that a special hybridized plasmonic resonance can be achieved by using a combination of multiple materials. Furthermore, a hybridized Au/Ag bullseye nanostructure has been designed and fabricated by the focused ion beam milling. Investigated by the CL process, we find that the hybridized plasmonic emission can be manipulated by the excitation position of the electron beam and the geometry of the bullseye pattern. Finally, we move forward to apply the electron-beam excitation to investigate topological insulators, which are possible to support surface plasmonic waves. A new tip plasmon emission is excited due to the charge oscillation in Bi2Te3 nanotips. Plasmonic properties of Bi2Te3 nanostructures relate to the lateral size, excitation location and resonant wavelength. Finally, based on the application of hybrid plasmonic structures and resonance between edges, nanosphere heterodimers are expected to broaden the usage of plasmonic materials. Investigated by the numerical simulation, an enhanced hotspot emission is observed with a broad wavelength range. The plasmonic behaviors depend on the composition and structural size. </p> <p>As high energy incident electrons excite electrons from valence bands to conduction bands by secondary processes, we investigated high quality ultrathin InAs layers in InAs/GaAs heterostructures. The CL measurement reveals the formation of In rich clusters for sub monolayers. The electron beam excitation provides a better spatial resolution to observe the variation of CL signal at different locations. The CL peak position, linewidth, and intensity relate to the thickness and roughness of ultrathin layers. </p>

Degree

thesis:*
Name thesis:degree_name
Doctor of Philosophy in Physics (PhD)
Level thesis:degree_level
Dissertation
Year dc:date.available
2020

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Yan, Qigeng
Advisor dc:contributor.advisor
  • Salamo, Gregory J.
Contributors dc:contributor
  • Ware, Morgan E.
  • Churchill, Hugh O.H.

Subjects

dc:subject × 7

Identifiers

dc:identifier.*
Repository record dc:identifier
https://scholarworks.uark.edu/etd/3912
OAI identifier oai:identifier
oai:scholarworks.uark.edu:etd-5462

Chain of custody

source
Harvested from
University of Arkansas
Base URL
scholarworks.uark.edu/do/oai/
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Yan, Qigeng. Applications of Cathodoluminescence in Plasmonic Nanostructures and Ultrathin InAs Quantum Layers. Dissertation thesis, 2020. https://scholarworks.uark.edu/etd/3912