Impedance spectroscopy Iron oxides Photoelectrochemistry Water--Electrolysis Materials Science
Growing worldwide energy demand coupled with an increasing awareness of anthropogenic climate change has driven research into carbon-neutral and solar-derived energy sources. One attractive strategy is the storage of solar energy in the bonds of H2 formed by photoelectrochemical (PEC) water splitting. Hematite, an iron oxide, has been widely investigated as a candidate material for PEC water splitting due to its stability, non-toxicity, earth abundance and consequent low cost, and a theoretical 15% solar-to-hydrogen conversion efficiency. However, poor electrical properties and slow rates of the water oxidation reaction have limited its potential as an economical water splitting catalyst. Additionally, the most efficient hematite-based devices are fabricated via expensive, vacuum-phase techniques, limiting scalability to broad integration into the energy supply. In this thesis, I develop a new, solution-based deposition method for high quality, planar hematite thin films using successive ionic layer adsorption and reaction (SILAR). The constant geometry and tight control over layer thickness possible with SILAR makes these films ideal model systems to understand the two key steps of PEC water oxidation: charge separation and interfacial hole transfer. In Chapter 3, I report on facile annealing treatments to dope hematite with Ti and Sn, and I show that these impurity atoms at the hematite/electrolyte interface increase hole transfer efficiency from nearly 0 to above 60%. However, charge separation remains below 15% with these dopants incorporated via solid state diffusion, mainly due to low hole mobility. To overcome this associated small transport length, extremely thin hematite coatings were deposited on Sb:SnO2 monolayer inverse opal scaffolds. With this modified substrate, photocurrent increased proportionately to the surface area of the scaffold. While Chapter 3 discusses incorporation of dopants via solid state diffusion, Chapter 4 examines methods to incorporate Ti via modified SILAR solutions. With this method, hematite films with well-controlled, uniform doping profiles were successfully fabricated. An optimal Ti concentration of 4.2% in the film enabled a charge separation efficiency of >20%, and I show that holes generated within 3 nm of the depletion region are separated with unity efficiency. With the addition of an ultrathin FeOOH overlayer, hole transfer efficiency is increased to 100% as a result of an increased concentration of reactive holes at the hematite/electrolyte interface. These combined effects lead to photocurrents >0.85 mAcm-2 at 1.23 VRHE, which is competitive with champion planar films regardless of fabrication method. Importantly, the methods of fabrication and analysis described in this thesis are applicable to a wide range of materials for a variety of applications. The SILAR method can be applied to many compounds, provided their constituent atoms are soluble in liquid solvents. Additionally, the facile optical and electrochemical measurements used to analyze hematite in Chapters 3 and 4 can be readily adapted to other semiconductor materials with the aim of understanding their charge transport properties.
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Title
Solution deposited and modified iron oxide for enhanced solar water splitting
Creators
Anthony J. Abel - DU
Contributors
Jason B. Baxter (Advisor) - Drexel University (1970-)
Awarding Institution
Drexel University
Degree Awarded
Master of Science (M.S.)
Publisher
Drexel University; Philadelphia, Pennsylvania
Number of pages
xii, 90 pages
Resource Type
Thesis
Language
English
Academic Unit
Materials (Science and) Engineering (Metallurgical Engineering) [Historical]; College of Engineering (1970-2026); Drexel University