@phdthesis{Franck2025, author = {Franck, Max}, title = {Synthesis of hexagonal boron nitride on CMOS-compatible substrates via chemical vapor deposition}, doi = {10.26127/BTUOpen-7192}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:co1-opus4-71925}, school = {BTU Cottbus - Senftenberg}, year = {2025}, abstract = {About 20 years ago, the discovery of an easy method to exfoliate single atomic layers of graphene opened the door for the investigation of 2D materials. They often exhibit superior electrical and mechanical properties compared to their 3D counterparts, and in addition, entirely new physical properties emerge at these ultra-low thickness scales, making 2D materials a highly interesting topic of materials research. A large variety of 2D materials with various electrical properties have since been discovered: graphene is a conductor with an extremely high charge carrier mobility, several transition metal dichalcogenides are direct bandgap semiconductors with the bandgap value being dependent on the chemical composition, and hexagonal boron nitride (hBN) is an insulator. This means that, in principle, all the building blocks for 2D microelectronic devices are available, which would mark the ultimate miniaturization. In practice, this vision is far from being realized, as large-scale fabrication methods for 2D materials and their heterostructures are still under development. Hexagonal boron nitride has a large range of applications, as it plays a central role in 2D microelectronics: not only are dielectrics a crucial part of microelectronic devices, but hBN is also necessary to shield other 2D materials from contact with the 3D environment, which causes deterioration of their intrinsic properties. Further potential applications are deep UV optoelectronics, thermal neutron detection, and single-photon emitters for quantum communication. While synthesis of single-crystalline hBN monolayers and high-quality multilayers has been demonstrated on a 2" wafer scale, it relies on catalytic transition metals, such as Cu, as the growth substrates. Obviously, one layer does not a device make, and thus transfer of the grown hBN films is usually employed to fabricate full devices. Unfortunately, this leaves behind metal contaminations at concentrations that are incompatible with the stringent purity requirements in CMOS manufacturing lines. In order to facilitate integration of 2D materials into established CMOS technology, which is deemed the most promising route for their large-scale adoption, synthesis of hBN on CMOS-compatible substrates, such as Si, Ge, and dielectrics, is desirable. At the beginning of my work, almost no literature on this topic was available, especially not for Ge and Si substrates. In this thesis, a growth process for hBN on Ge(001) via high-vacuum chemical vapor deposition is developed. The influence of various process parameters on the morphology, structure, and crystalline quality of the grown films is studied, and the growth process is optimized towards ultra-thin, smooth, and high-quality hBN. Additionally, the efficacy of standard characterization methods is evaluated and alternatives are explored. Furthermore, the optimized growth process is applied to Si(001) and graphene growth substrates, also yielding high-quality hBN films.}, subject = {Chemical vapor deposition; Hexagonal boron nitride; 2D materials; Thin film deposition; Chemische Gasphasenabscheidung; Hexagonales Bornitrid; 2D-Materialien; D{\"u}nnschichtabscheidung; Zweidimensionales Material; D{\"u}nnschichttechnik; Bornitrid; Hexagonaler Kristall; CVD-Verfahren}, language = {en} } @phdthesis{Akhtar2022, author = {Akhtar, Fatima}, title = {Graphene synthesis under Si-CMOS compatible conditions}, doi = {10.26127/BTUOpen-5927}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:co1-opus4-59270}, school = {BTU Cottbus - Senftenberg}, year = {2022}, abstract = {Due to the unique electronic band structure, graphene has opened the great potential to extend the functionality of a large variety of graphene-based devices in health and environment, energy storage, or various microelectronic applications, to mention a few. At this point, the implementation of graphene into Silicon (Si) semiconductor technology is strongly dependent on several key challenges. Among them, high-quality and wafer-scale graphene synthesis on CMOS compatible substrates is of the highest importance. Though large-area graphene can be achieved on substrates like copper, platinum, silicon carbide, or single-crystal Ni, however, high growth temperatures, unavailability of large scale, or contamination issues are the main drawbacks of their usage. In this PhD work, 8-inch scale graphene synthesis is attempted on alternative substrates such as epitaxial Germanium on Si and polycrystalline Nickel on Si. To achieve the growth of the highest quality of graphene, this work focuses on the investigations of various nucleation and growth mechanisms, substrate-graphene interfaces, effects of different substrate orientations, and detailed microscopic and macroscopic characterization of the grown films. Finally, it should also be stressed that the experiments in this work were carried out in a standard BiCMOS pilot-line, making this study unique, as its results might directly pave the way to further graphene integration and graphene-based device prototyping in mainstream Si technologies.}, subject = {Graphene; Chemical vapor deposition; Growth; Oxidation; Germanium; Nickel; Graphen; CVD; Wachstum; Oxidation; Graphen; Keimbildung; Wachstum; CVD-Verfahren; Nickel; Germanium}, language = {en} }