Refine
Document Type
- Doctoral Thesis (2)
Language
- English (2)
Has Fulltext
- yes (2)
Is part of the Bibliography
- no (2)
Keywords
- terahertz (2) (remove)
Institute
- Physik (2)
The main subject of the thesis is the investigation of low-temperature-grown (LTG) GaAs-based photoconductive switches used in the generation of continuous-wave (CW) and pulsed terahertz (THz) radiation. The use of photoconductive switches based on low-temperature-grown GaAs proved to be a viable option in generating electromagnetic transients on a subpicosecond time-scale, corresponding to frequencies of ~1012 Hz (between microwave and far-infrared). The most appealing property of LTG-GaAs is the ultra-short carrier lifetime obtained by incorporation of a large number of As defects when GaAs is grown at low temperatures. However, the reason for poor THz emission efficiency (low CW-THz power lrvrls) is still up to this date not fully understood. The various reasons are to be found in both, optoelectronic properties of the active layer (photoconducting material) as well as in the device characteristics. The thesis focuses primarily on the limitation imposed to the performance of the THz emitters by the material of choice for the active layer (LTG-GaAs) and secondarily, on the impact of a particular emitter design on the THz radiation efficiency. In the beginning of the thesis one finds an ample overview on the electrical and optical properties of the LTG-GaAs material. A special chapter deals with the main features of current-voltage and CW-THz emission characteristics measured from a photoconductive antenna employed as photomixer. We observed deviations from the theoretical predictions of photomixing theory which were explained by considering the high-field electrons effects (velocity overshoot and elongation of the carrier trapping time). With the scope to provide a better understanding of the correlation between device and material properties when the LTG-GaAs material is integrated with a planar antenna (photoswitch), a special THz double-pulse technique (THz-pump and -probe) was implemented. The experimental results assisted by modeling of the double-pulse THz data provide a gainful insight into the ultrafast dynamics of the electrical field and photogenerated carriers. The outcome of the double-pulse experiments is the evidence for long-living carriers in the LTG-GaAs-based photoconductive antenna under applied bias, with a deleterious impact upon the emitter performance (especially for the CW case). Additionally, by measuring the THz transients generated by a constant laser pulse with and without a CW laser background illumination, we obtained further evidence of strong field-screening effects. This phenomenon was also attributed to the existence of long-living space-charge effects. For both cases (pulsed as well as CW) we derived the de-screening time constant. The principal conclusion of the present study is that, besides shortcomings imposed by the THz-circuitry, photomixers based on materials with traps (defects) exhibit great “affinity” for space-charge screening effects with cumulative and therefore long-lived deleterious impact upon device’s performance. An alternative would be the usage of a transient-time limited device where the response time is given by the carrier collection time, possibly with only one type of carrier responsible for THz signal generation.
Terahertz (THz) physics are an emerging field of research dealing with electromagnetic radiation in the far-infrared to microwave region. The development of innovative technologies for the generation and detection of THz radiation has only in the recent past led to a tremendous rise of both fundamental research as well as investigation of possible fields of application for THz radiation. The most prominent reason has long been the scarce accessibility of the THz region of the electromagnetic spectrum - commonly loosely located between 0.1 and 30 THz - to broad research, and it was mostly limited to astronomy and high energy physics facilities. Over the recent years, numerous novel concepts on both the source and detector side have been proposed and successfully implemented to overcome this so-called THz gap. New technology has become available and paved the way for wide-spread experimental laboratory work and accompanying theoretical investigations. First application studies have emerged and in some cases even commercial development of the field of THz physics is on the rise. Despite these enormous progresses, a continuing demand for more efficient THz detectors still impels current technological research. Relatively low source powers are often a major limiting factor and the request for new detection concepts, their understanding and implementation, as well as the optimization on a device basis has been and still remains in place. One of these concepts is the use of field-effect transistors (FETs) high above their conventional cut-off frequencies as electronic THz detectors. The concept has been proposed in a number of theoretical publications by M. Dyakonov and M. Shur in the early 1990's, who pioneered to show that under certain boundary conditions, non-linear collective excitations of the charge carrier system of a two-dimensional electron gas (2DEG) by incident THz radiation can exhibit rectifying behaviour - a detection principle, which has become known as plasma wave or plasmonic mixing. Up until this day, the concept has been successfully implemented in many device realizations - most advanced in established silicon CMOS technology - and stands on the edge of becoming commercially available on a large scale. The main direction of the work presented in this thesis was the modeling and experimental characterization of antenna-coupled FETs for THz detection - termed TeraFETs in this and the author's previous works - which have been implemented in different material systems. The materials presented in this thesis are AlGaN/GaN HEMTs and graphene FETs. In a number of scientific collaborations, TeraFETs were designed based on a hydrodynamic transport model, fabricated in the respective materials, and characterized mainly in the lower THz frequency region from 0.2 to 1.2 THz. The theoretical description of the plasma wave mixing mechanism in TeraFETs, as initiated by Dyakonov and Shur, was based on a fluid-dynamic transport model for charge carriers in the transistor channel. The THz radiation induces propagating charge density oscillations (plasma waves) in the 2DEG, which via non-linear self-mixing cause rectification of the incident THz signals. Over the course of this work, it became evident in the on-going detector characterization experiments that this original theoretical model of the detection process widely applied in the respective literature does not suffice to describe some of the experimental findings in TeraFET detection signals. Thorough measurements showed signal contributions, which are identified in this work to be of thermoelectric origin arising from an inherent asymmetric local heating of charge carriers in the devices. Depending on the material, these contributions constituted a mere side effect to plasmonic detection (AlGaN/GaN) or even reached a comparable magnitude (graphene FETs). To include these effects in the detector model, the original reduced fluid-dynamic description was extended to a hydrodynamic transport model. The model yields at the current stage a reasonable qualitative agreement to the measured THz detection signals. This thesis presents the formulation of a hydrodynamic charge carrier transport model and its specific implementation in a circuit simulation tool. A second modeling aspect is that the transport equations cover only the intrinsic plasmonic detection process in the active gated part of the TeraFET's transistor channel. In order to model and simulate the behavior of real devices, extrinsic detector parts such as ungated channel regions, parasitic resistances and capacitances, integrated antenna impedance, and others must be considered. The implemented detector model allows to simulate THz detection in real devices with the above influences included. Besides presentation of the detector model, experimental THz characterization of the fabricated TeraFETs is presented in this work. Careful device design yielded record detection performance for detectors in both investigated materials. The respective results are shown and the experimental observations of the thermoelectric effect in TeraFETs are compared to modeling results. It is the goal of this work to provide a framework for further theoretical and experimental studies of the plasmonic and thermoelectric effect in TeraFETs, which could eventually lead to a new type of THz detectors particularly exploiting the thermoelectric effect to enhance the sensitivity of today's plasmonic TeraFETs.