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III-V compound multiple quantum well based modulator and switching devices.

dc.contributor.authorHong, Songcheol
dc.contributor.advisorSingh, Jasprit
dc.date.accessioned2016-08-30T16:47:09Z
dc.date.available2016-08-30T16:47:09Z
dc.date.issued1989
dc.identifier.urihttp://gateway.proquest.com/openurl?url_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:dissertation&res_dat=xri:pqm&rft_dat=xri:pqdiss:8920551
dc.identifier.urihttps://hdl.handle.net/2027.42/128323
dc.description.abstractA general formalism to study the absorption and photocurrent in multiple quantum well is provided with detailed consideration of quantum confined Stark shift, exciton binding energy, line broadening, tunneling, polarization, and strain effects. Results on variation of exciton size, binding energies and transition energies as a function electric field and well size have been presented. Inhomogeneous line broadening of exciton lines due to interface roughness, alloy disorder and well to well size fluctuation is calculated. The potential of material tailoring by introducing strain for specific optical response is discussed. Theoretical and experimental results on excitonic and band-to-band absorption spectra in strained multi-quantum well structures are shown. I also report on polarization dependent optical absorption for excitonic and interband transitions in lattice matched and strained multiquantum well structures in presence of transverse electric field. Photocurrent in a p-i(MQW)-n diode with monochromatic light is examined with respect to different temperatures and intensities. The negative resistance of I-V characteristic of the p-i-n diode is based on the quantum confined Stark effect of the heavy hole excitonic transition in a multiquantum well. This exciton based photocurrent characteristic allows efficient switching. A general purpose low power optical logic device using the controller-modulator concept bas been proposed and realized. The controller is a heterojunction phototransistor with multiquantum wells in the base-collector depletion region. This allows an amplified photocurrent controlled voltage feedback with low light intensity levels. Detailed analysis of the sensitivity of this device in various modes of operation is studied. Studies are also presented on the cascadability of the device as well as its integrating-thresholding properties. A multiquantum well heterojunction bipolar transistor (MHBT), which has N$\sp+$-p$\sp+$-i(MQW)-N structure has been fabricated to test the concept. Gain ($>$30) is obtained in the MBE grown devices and efficient switching occurs due to the amplification of the exciton based photocurrent. The level shift operation of the base contacted MHBT are demonstrated.
dc.format.extent163 p.
dc.languageEnglish
dc.language.isoEN
dc.subjectBased
dc.subjectCompound
dc.subjectDevices
dc.subjectIii
dc.subjectModulator
dc.subjectMultiple
dc.subjectQuantum
dc.subjectSwitching
dc.subjectWell
dc.titleIII-V compound multiple quantum well based modulator and switching devices.
dc.typeThesis
dc.description.thesisdegreenamePhDen_US
dc.description.thesisdegreedisciplineElectromagnetics
dc.description.thesisdegreedisciplinePure Sciences
dc.description.thesisdegreegrantorUniversity of Michigan, Horace H. Rackham School of Graduate Studies
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/128323/2/8920551.pdf
dc.owningcollnameDissertations and Theses (Ph.D. and Master's)


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