Title:
Optically transparent antennas for multi-modal sensing

dc.contributor.advisor Valenta, Christopher R.
dc.contributor.advisor Durgin, Gregory D.
dc.contributor.author Silva, Zachary J.
dc.contributor.committeeMember Peterson, Andrew F.
dc.contributor.committeeMember Gaylord, Thomas K.
dc.contributor.department Electrical and Computer Engineering
dc.date.accessioned 2020-05-20T16:57:47Z
dc.date.available 2020-05-20T16:57:47Z
dc.date.created 2019-05
dc.date.issued 2019-04-30
dc.date.submitted May 2019
dc.date.updated 2020-05-20T16:57:47Z
dc.description.abstract The advent of multi-modal data fusion, the rise of CubeSats, and the dawn of the drone, among others, have all put pressure on sensor developers to increase payload performance while decreasing their size, weight, and power (SWAP). RF-EO/IR fusion enables enhanced situational awareness due to the changes in material properties at different electromagnetic frequencies. The research explores high performance optically transparent conductors realized as antennas used for single aperture RF-EO/IR sensor fusion. The trade-off between optical transparency and conductivity is apparent and well documented within the materials science community. The fundamental principles to achieve optical transparency of a conductor at radio-frequency (RF), microwave, and millimeter wave frequencies, however, has not been well established. The presentation describes transparent conducting oxides in terms of the electromagnetic material properties based on Maxwell’s equations, which exposes potential limits to the simultaneous conductivity at RF and transparency in the optical region. Optical transmittance and imaging measurements to characterize the degradation of the optical system performance are also presented to compare the transparent conductors over an optical aperture, a requirement for single aperture multi-modal sensing. In addition, a new figure of merit for transparent RF conductors is presented which enables the transparent conducting oxides and mesh conductors to be compared directly as a criterion to determine the highest performing optically transparent conductor for RF applications. The figure of merit for transparent RF conductors reveals the mesh is the highest performing material for single aperture multi-modal sensing, but the effects of a mesh conductor in microstrip circuits have not yet been entirely explored in literature. The initial studies have shown that the introduction of mesh alters the effective inductance and capacitance of the transmission line at RF due to its geometry. Methods to predict and compensate for the changes in response due to the mesh are presented to minimize undesired reflections in RF circuitry. In addition, the effects of the mesh are presented to discuss how the mesh conductor affects the radiation properties of a microstrip patch antenna. The research lays the foundation for the design and implementation of an optically transparent phased array antenna which can be utilized in future applications for single aperture multi-modal sensing.
dc.description.degree M.S.
dc.format.mimetype application/pdf
dc.identifier.uri http://hdl.handle.net/1853/62698
dc.language.iso en_US
dc.publisher Georgia Institute of Technology
dc.subject Optically transparent conductors
dc.subject Optically transparent antennas
dc.subject Antennas
dc.subject Applied electromagnetics
dc.subject Sensor fusion
dc.subject Optics
dc.subject Electromagnetics
dc.title Optically transparent antennas for multi-modal sensing
dc.type Text
dc.type.genre Thesis
dspace.entity.type Publication
local.contributor.advisor Durgin, Gregory D.
local.contributor.corporatename School of Electrical and Computer Engineering
local.contributor.corporatename College of Engineering
relation.isAdvisorOfPublication c942e59e-2515-4a56-bd7e-a1c73baa4b67
relation.isOrgUnitOfPublication 5b7adef2-447c-4270-b9fc-846bd76f80f2
relation.isOrgUnitOfPublication 7c022d60-21d5-497c-b552-95e489a06569
thesis.degree.level Masters
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