High-Efficiency Millimeter-Wave Front-Ends for Large Phased-Array Transmitters

dc.contributor.advisorSafavi-Naeini, Safieddin
dc.contributor.authorRasti Boroujeni, Soroush
dc.date.accessioned2020-10-26T20:24:52Z
dc.date.available2021-10-27T04:50:08Z
dc.date.issued2020-10-26
dc.date.submitted2020-10-22
dc.description.abstractThe ever-increasing demand for wireless broadband connectivity requires infrastructure capable of supporting data transfer rates at multi-Gbps. To accommodate such heavy traffic, the channel capacity for the given spectrum must be utilized as efficiently as possible. Wideband millimeter-wave phased-array systems can enhance the capacity of the channel by providing multiple steerable directional beams. However the cost, complexity, and high power consumption of phased-array systems are key barriers to the commercialization of such technology. Silicon-based beam-former chips and scalable phased-array technology offer promising solutions to lower the cost of phased-array systems. However, the implementation of low-power phased-array architectures is still a challenge. Millimeter-wave power generation in silicon beam-formers suffers from low efficiency. The stringent linearity requirements for multi-beam wideband arrays further limits the achievable efficiency. In scalable phased-arrays, each module consists of an antenna sub-array and a beam-former chip that feeds the antenna elements. To improve efficiency, a design methodology that considers the beam-former chip and the antenna array as one entity is necessary. In this thesis, power-efficient solutions for a millimeter-wave phased-array transmitter are studied and different high-efficiency power amplifier structures for broadband applications are proposed. Initially, the design of a novel 27-30 GHz RF front-end consisting of a variable gain amplifier, a 360 degree phase shifter, and a two-stage linear power amplifier with output power of 12 dBm is described. It is fabricated using 0.13 $\mu m$ SiGe technology. This chip serves as the RF core of a beam-former chip with eight outputs for feeding a 2$\times$2 dual-feed sub-array. Such sub-arrays are used as part of large phased-arrays for SATCOM infrastructure. Measurement results show 26.7 \% total efficiency for the designed chip. The chip achieves the highest efficiency among Ka-band phased-array transmitters reported in the literature. In addition, original transformer-based output matching structures are proposed for harmonic-tuned power amplifiers. Harmonic-tuned power amplifiers have high peak-efficiency but their complicated output matching structure can limit their use in beam-former RF front-ends. The proposed output matching structures have the layout footprint of a transformer, making their use in beam-former chips feasible. A 26-38 GHz power amplifier based on a non-inverting 1:1 transformer is fabricated. A measured efficiency of more than 27 \% is achieved across the band with an output power of 12 dBm. Furthermore, two continuous class $F^{-1}$ power amplifiers using 1:1 inverting transformers are described. Simulation results show a peak-efficiency of 35 \% and output power of 12 dBm from 24 to 30 GHz. A common-base power amplifier with inverting transformer output matching is also demonstrated. This amplifier achieves a peak-efficiency of 42 \% and peak output power of 16 dBm. Finally, a low-loss Ka-band re-configurable output matching structure based on tunable lines is proposed and implemented. A double-stub matching structure with three tunable segments is proposed to maximize the impedance matching coverage. This structure can potentially compensate for the antenna impedance variation in phased-array antennas.en
dc.identifier.urihttp://hdl.handle.net/10012/16470
dc.language.isoenen
dc.pendingfalse
dc.publisherUniversity of Waterlooen
dc.subject5G mobile communicationen
dc.subjectbeam-former chipen
dc.subjectGEOen
dc.subjectmillimeter wave phased-arrayen
dc.subjectphase shifteren
dc.subjectpassive beam-formingen
dc.subjectsatellite communicationen
dc.subjecttransmitteren
dc.subjectvariable attenuatoren
dc.subjectcontinuous-modeen
dc.subjectRF Tuneren
dc.subjectReconfigurable Output Matching Networken
dc.subjecttransformeren
dc.subjectpower amplifieren
dc.subjectsatellite communicationen
dc.subjectnon-inverting transformeren
dc.subjectinverting transformeren
dc.subjectantennaen
dc.subjectactive-antennaen
dc.subjectSATCOMen
dc.titleHigh-Efficiency Millimeter-Wave Front-Ends for Large Phased-Array Transmittersen
dc.typeDoctoral Thesisen
uws-etd.degreeDoctor of Philosophyen
uws-etd.degree.departmentElectrical and Computer Engineeringen
uws-etd.degree.disciplineElectrical and Computer Engineeringen
uws-etd.degree.grantorUniversity of Waterlooen
uws-etd.embargo.terms1 yearen
uws.contributor.advisorSafavi-Naeini, Safieddin
uws.contributor.affiliation1Faculty of Engineeringen
uws.peerReviewStatusUnrevieweden
uws.published.cityWaterlooen
uws.published.countryCanadaen
uws.published.provinceOntarioen
uws.scholarLevelGraduateen
uws.typeOfResourceTexten

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