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Tailoring p-Type Behavior in ZnO Quantum Dots through Enhanced Sol-Gel Synthesis: Mechanistic Insights into Zinc Vacancies.

Abdullah KahramanEtienne SocieMaryam Nazari Haghighi PashakiDimitrios KazazisMerve Buldu-AkturkVictoria KabanovaElisa BiasinGrigory SmolentsevDaniel GrolimundEmre ErdemJacques-Edouard MoserAndrea CannizzoCamila BacellarChristopher Milne
Published in: The journal of physical chemistry letters (2024)
The synthesis and control of properties of p-type ZnO is crucial for a variety of optoelectronic and spintronic applications; however, it remains challenging due to the control of intrinsic midgap (defect) states. In this study, we demonstrate a synthetic route to yield colloidal ZnO quantum dots (QD) via an enhanced sol-gel process that effectively eliminates the residual intermediate reaction molecules, which would otherwise weaken the excitonic emission. This process supports the creation of ZnO with p-type properties or compensation of inherited n-type defects, primarily due to zinc vacancies under oxygen-rich conditions. The in-depth analysis of carrier recombination in the midgap across several time scales reveals microsecond carrier lifetimes at room temperature which are expected to occur via zinc vacancy defects, supporting the promoted p-type character of the synthesized ZnO QDs.
Keyphrases
  • room temperature
  • quantum dots
  • sensitive detection
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  • oxidative stress
  • visible light
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