Synthesis of Lead-Free CaTiO3 Oxide Perovskite Film through Solution Combustion Method and Its Thickness-Dependent Hysteresis Behaviors within 100 mV Operation.
Subin LeeSoyeon KwakTaehyun ParkByoungchul SonHyung Joong YunJaehyun HurHocheon YooPublished in: Molecules (Basel, Switzerland) (2021)
Perovskite is attracting considerable interest because of its excellent semiconducting properties and optoelectronic performance. In particular, lead perovskites have been used extensively in photovoltaic, photodetectors, thin-film transistors, and various electronic applications. On the other hand, the elimination of lead is essential because of its strong toxicity. This paper reports the synthesis of lead-free calcium titanate perovskite (CaTiO3) using a solution-processed combustion method. The chemical and morphological properties of CaTiO3 were examined as a function of its thickness by scanning electron microscopy, X-ray diffraction (XRD), atomic force microscopy, X-ray photoelectron spectroscopy, and ultraviolet-visible spectrophotometry. The analysis showed that thicker films formed by a cumulative coating result in larger grains and more oxygen vacancies. Furthermore, thickness-dependent hysteresis behaviors were examined by fabricating a metal-CaTiO3-metal structure. The electrical hysteresis could be controlled over an extremely low voltage operation, as low as 100 mV, by varying the grain size and oxygen vacancies.
Keyphrases
- electron microscopy
- room temperature
- solar cells
- atomic force microscopy
- high resolution
- optical coherence tomography
- high efficiency
- single molecule
- particulate matter
- magnetic resonance imaging
- sewage sludge
- multidrug resistant
- solid state
- emergency department
- air pollution
- magnetic resonance
- mass spectrometry
- heavy metals
- risk assessment
- carbon nanotubes
- crystal structure
- anaerobic digestion