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Dive into the research topics where Jonathan Abbott is active.

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Featured researches published by Jonathan Abbott.


45th AIAA Aerospace Sciences Meeting and Exhibit | 2007

Triggering Threshold Spacecraft Charging with Changes in Electron Emission from Materials

Jr Dennison; Ryan Hoffmann; Jonathan Abbott

[Abstract] Modest changes in spacecraft charging conditions can lead to abrupt changes in the spacecraft equilibrium, from small positive potentials to large negative potentials relative to the space plasma; this phenomenon is referred to as threshold charging. It is well known that temporal changes of the space plasma environment (electron plasma temperature or density) can cause threshold charging. Threshold charging can also result from by temporal changes in the juxtaposition of the spacecraft to the environment, including spacecraft orbit, orientation, and geometry. This study focuses on the effects of possible changes in electron emission properties of representative spacecraft materials. It is found that for electron-induced emission, the possible threshold scenarios are very rich, since this type of electron emission can cause either positive or negative charging. Alternately, modification of photonor ion-induced electron emission is found to induce threshold charging only in certain favorable cases. Changes of emission properties discussed include modifications due to: contamination, degradation and roughening of surfaces and layered materials; biasing and charge accumulation; bandstructure occupation and density of states caused by heat, optical or particle radiation; optical reflectivity and absorptivity; and inaccuracies and errors in measurements and parameterization of materials properties. An established method is used here to quantitatively gauge the relative extent to which these various changes in electron emission alter a spacecraft’s charging behavior and possibly lead to threshold charging. The absolute charging behavior of a hypothetical flat, twodimensional satellite panel of a single material (either polycrystalline conductor Au or the polymeric polyimide KaptonTM H) is modeled as it undergoes modification and concomitant changes in spacecraft charging in three representative geosynchronous orbit environments, from full sunlight to full shade (eclipse) are considered.


Archive | 2005

Methods for Determining Crossover Energies in Insulating Materials

Jonathan Abbott; Jr Dennison


Bulletin of the American Physical Society | 2006

Measurements of the RadiationInduced Conductivity of Insulating Polymeric Materials for the James Webb Space Telescope

J. Corbridge; Jr Dennison; Joshua Hodges; Ryan Hoffmann; Jonathan Abbott; A. W. Hunt; R. Spaulding


Archive | 2006

Instrumentation for Radiation Induced Conductivity Measurements of Insulating Materials

Jodie Corbridge; Joshua L. Hodges; Jr Dennison; Ryan Hoffmann; Jonathan Abbott; Steven Hart; A. Thomas; Jerilyn Brunson; A. Hunt; R. Spaulding


Archive | 2006

Measurement of the Electron Yields of Highly Insulating Materials

Jr Dennison; Ryan Hoffmann; Jonathan Abbott


Archive | 2006

Electron Emission Testing of Solar SailNanocomposite Materials

Jr Dennison; Jonathan Abbott; Ryan Hoffmann; Jodie Corbridge


Archive | 2006

From Whence Come the Electrons

Jonathan Abbott; Jr Dennison; Jason Kite; Ryan Hoffmann; R. E. Davies


Bulletin of the American Physical Society | 2006

Comparison of Methods for Determining Crossover Energies in Insulators

Jonathan Abbott; Ryan Hoffmann; Jr Dennison; Sarah Barton


Bulletin of the American Physical Society | 2006

Determining the Critical Dose Threshold of Electron-Induced Electron Yield for Minimally Charged Highly Insulating Materials

Ryan Hoffmann; Jr Dennison; Jonathan Abbott


Archive | 2005

Comparison of Methods for Determining CrossoverEnergies in Insulators

Jonathan Abbott; Ryan Hoffmann; Jr Dennison; Sarah Barton

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Ryan Hoffmann

Air Force Research Laboratory

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A. W. Hunt

Idaho State University

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