This research develops three approaches to the development of advanced functional nanomaterials for sustainable energy applications. The first two focus on photocatalysis using a modified sol-gel citrate method, while the third explores nanocomposite cathodes for intermediate-temperature solid oxide fuel cells (IT-SOFCs). First, phase-pure, mesoporous ZnAl₂O₄ materials with very high surface area (to 344 m²/g), uniform pores, and small crystallites were achieved in a novel synthesis involving calcination under limited O₂ and in-situ carbon self-templating. These materials exhibited oxygen vacancies, reduced band gap, and extended exciton lifetime, leading to exceptional photocatalysis for degradation of Congo Red dye (>99% in <30 minutes) and doubling H₂ production rate compared to conventionally-made ZnAl₂O₄. Second, Cu was doped into this framework, creating phase-pure Zn₁₋ₓCuₓAl₂O₄ spinel nanomaterials. Oxygen vacancy concentration increased and enabled visible-light absorption, and the exciton lifetime was dramatically increased. This suppressed charge recombination, and, coupled with optimised surface properties, resulted in superior H₂ evolution and dye degradation rates. Third, undoped, Mn-doped, and Cu/Mn-doped Co₃O₄/NiO nanocomposite cathodes were developed for IT-SOFCs. Mn doping improved the microstructure and accelerated oxygen reduction kinetics. The Mn-doped composite demonstrated low polarisation resistance and excellent thermal stability, identifying it as a highly promising cathode material.
Syed Ansar Ali Shah (2026) studied this question.