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Ultrafast Charge Transfer in a Core-shell CdS@Cu-TCPP-Pt Heterojunction for Photocatalytic Hydrogen Production Coupled with Selective Benzylamine Oxidation.

Manman ShiDian LuoRong LiuJieding WeiSaiya GuoZhou LuYong-Hong Ni
Published in: Inorganic chemistry (2024)
Photocatalytic selective oxidation of organic substances coupled with hydrogen production is believed to be one of the most favorable pathways to make full use of photogenerated charge carriers. However, this catalytic reaction is often discouraged due to the rapid recombination of photogenerated carriers in practical applications. In this work, a core-shell CdS@Cu-TCPP-Pt nanorod heterojunction was dexterously designed for boosting the photocatalytic dehydrogenation performance of benzylamine. The transient absorption results revealed that the photogenerated electron-holes could be effectively separated by properly matching the energy levels in CdS@Cu-TCPP. Surprisingly, Pt embedded in Cu-TCPP not only provided abundant hydrogen production active sites but also facilitated ultrafast charge transfer, which endowed CdS@Cu-TCPP-Pt with remarkable photocatalytic performances for the coproductions of N -benzylidenebenzylamine (1 mL) with a conversion of 23.48% and H 2 (20.75 mmol g -1 h -1 ) under visible irradiation, far surpassing those of CdS and Cu-TCPP. Obviously, the present work verifies that designing and fabricating a hybrid photocatalyst with high separation efficiency of electron-hole pairs is also a significant avenue for other high-performance cooperative dual-functional photocatalytic reactions.
Keyphrases
  • visible light
  • aqueous solution
  • metal organic framework
  • solar cells
  • electron transfer
  • oxidative stress
  • drinking water
  • single cell
  • mass spectrometry
  • gold nanoparticles
  • radiation induced
  • blood brain barrier