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Photogating Effect and Diffractive Optics in Low-Dimensional Structures

Abstract

dc:description.abstract

The development of nanostructures is the driving force of many scientific and technological fields. Among these myriad applications, important technologies such as advanced detection and ranging capabilities for infrared wavelengths and enhanced sensing of chemical molecules have been obtained recently, advancing our understanding of the earth's climate and space imaging. This kind of advancement is made possible through the thorough understanding of the performance of these devices which are fabricated from low-dimensional materials such as graphene, as well as the interaction of light with the materials at the microscopic scales, as is included in this dissertation. As such, the techniques of fabrication and theoretical understanding of graphene-field effect transistors (GFETs) as well as multi-level Fresnel zone plates (MLFZPs) are provided in detail. The photogating effect, understood as the ability of charge carriers to generate photocurrent when excited by an incident photon within a material, is crucial to the device physics of GFETs. We can utilize this property, as well as the resultant band bending of the interfacial band structure created within these transistors, to measure and predict the power of light as it interacts with the optical sensing area of the graphene. This allows for graphene transistors to be effective photodetectors, and we can accurately model the behavior of these detectors at many testing conditions, such as differing ambient temperatures, varying wavelengths, and multiple sensing area sizes. This work elucidates the capabilities and efficacy of these devices as photodetectors within both experimental and simulated conditions. In addition to photodetectors, GFETs prove to be capable biosensors as well, as graphene modulation due to the interaction of a molecule on its surface has a similar effect on the current of the channel as the photogating effect. When coupling these mechanisms, we find that there is a measurable effect due to the deposition of a photoreactive biomolecule of interest on the surface of the device. In particular, utilizing photoactive yellow protein (PYP), which has an incredibly strong reaction to blue light, allows us record concentration levels of the protein in solution down to the femtomole on the graphene surface of the detector when illuminated with the appropriate wavelength. This ability to measure the amount of PYP present in solution has many exciting implications, both to the understanding of the protein itself, as well as to the capability of the devices in detecting other proteins or biological molecules. Finally, nanostructures are an important component to diffraction, which allows for the construction of very precise diffractive lenses. This work entails the fabrication and simulation of MLFZPs, which are useful in their ability to tune the wavelength and focal length of the lenses to strict parameters. In addition, it is shown that these devices may be fabricated on thin polyimide films, allowing for flexibility and usefulness in mechanical applications. We have been able to fabricate lenses with features in precise control down to the nanometer in depth, and this results in incredibly precise and powerful optics which align well with simulated values.

Degree

thesis:*
Name thesis:degree_name
Doctor of Philosophy
Level thesis:degree_level
doctoral
Discipline thesis:degree_discipline
Physics
Department dc:contributor.department
Physics
Grantor dc:publisher
Virginia Tech
Year dc:date.issued
2024

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Howe, Leslie
Chair dc:contributor.committeechair
  • Nguyen, Vinh
Committee members dc:contributor.committeemember
  • Emori, Satoru
  • Cooney, Michael P.
  • Pleimling, Michel Jean

Subjects

dc:subject × 3

Rights

dc:rights
Statement dc:rights
  • In Copyright
Language dc:language.iso
en

Identifiers

dc:identifier.*
Dc Identifier Other
vt_gsexam:41409
OAI identifier oai:identifier
oai:vtechworks.lib.vt.edu:10919/121110

Chain of custody

source
Harvested from
Virginia Tech
Base URL
vtechworks.lib.vt.edu/oai/request
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Howe, Leslie. Photogating Effect and Diffractive Optics in Low-Dimensional Structures. doctoral thesis, Virginia Tech, 2024. https://hdl.handle.net/10919/121110