Metal oxides are an essential building block of thin film electronics (a multi-billion dollar industry) and are incorporated in a range of commercially successful applications including photovoltaics, transparent transistors, random access memory and many more. Since the operation of thin film devices is dictated by the band alignment of the constituent layers, the strength of metal oxides is the diversity in the optoelectronic properties. The work function for an oxide can even be tuned due to the sensitivity of metal oxide properties to oxygen stoichiometry, while other band energetics can be modulated through cation doping. This sensitivity to stoichiometry is unique and offers unrealised opportunities for accurate energy level alignment with oxides but also makes electronic properties of oxides strongly dependent upon fabrication methods and parameters.
The growth of the thin film electronics industry depends on its ability to compete with already established silicon-based electronics, it is, therefore, necessary to improve the economic viability of this technology. To this end, there is a growing demand for a shift from expensive vacuum based to a low-cost solution based fabrication process which is expected to lower the cost by about 64%. [J. Phys. D: Appl. Phys., (2016) 49, 433001] Unfortunately, at this stage there is no clear understanding of how adopting new fabrication methods will affect the electronic properties of oxides, although recently Chen et al. [J. Mater. Chem., (2012) 22, 24202-24212] highlighted that for a few specific oxides the work function of air-exposed and solution processed films are 0.5-1.6 eV lower than vacuum deposited films.
The objective of the present proposal is to address the ambiguity in metal oxide properties and to establish principles for energy-level alignment between metal oxide layers. The specific goals of this project are to:
• Perform comprehensive electrical, optical, structural and chemical characterisations of a collection of metal oxide compounds each with a controlled variation in the chemical composition
• Correlate the electronic and optical properties of compounds to the stoichiometry
• Provide insight into the energy-level alignment at metal oxide/metal oxide interfaces