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Manipulation of interfacial charge dynamics for metal-organic frameworks toward advanced photocatalytic applications.

Chien-Yi WangHuai-En ChangCheng-Yu WangTomoyuki KuriokaChun-Yi ChenTso-Fu Mark ChangMasato SoneYung-Jung Hsu
Published in: Nanoscale advances (2023)
Compared to other known materials, metal-organic frameworks (MOFs) have the highest surface area and the lowest densities; as a result, MOFs are advantageous in numerous technological applications, especially in the area of photocatalysis. Photocatalysis shows tantalizing potential to fulfill global energy demands, reduce greenhouse effects, and resolve environmental contamination problems. To exploit highly active photocatalysts, it is important to determine the fate of photoexcited charge carriers and identify the most decisive charge transfer pathway. Methods to modulate charge dynamics and manipulate carrier behaviors may pave a new avenue for the intelligent design of MOF-based photocatalysts for widespread applications. By summarizing the recent developments in the modulation of interfacial charge dynamics for MOF-based photocatalysts, this minireview can deliver inspiring insights to help researchers harness the merits of MOFs and create versatile photocatalytic systems.
Keyphrases
  • metal organic framework
  • visible light
  • solar cells
  • human health
  • ionic liquid
  • mental health
  • molecular dynamics simulations
  • risk assessment
  • drinking water
  • health risk
  • electron transfer