Construction of Low-Cost Z-Scheme Heterostructure Cu2 O/PCN for Highly Selective CO2 Photoreduction to Methanol with Water Oxidation.
Zhi-Yuan TianLi-Hui KongYe WangHong-Juan WangYu-Jie WangShuang YaoTong-Bu LuZhi-Ming ZhangPublished in: Small (Weinheim an der Bergstrasse, Germany) (2021)
Solar-driven CO2 reaction with water oxidation into alcohols represents a promising approach to achieve real artificial photosynthesis. However, rapid recombination of photogenerated carriers seriously restricts the development of artificial photosynthesis. Herein, a facile method is explored to construct low-cost Z-Scheme heterostructure Cu2 O/polymeric carbon nitride (PCN) by in situ growth of Cu2 O hollow nanocrystal on PCN. The protective PCN layer and Z-schematic charge flow can make robust Cu2 O/PCN photocatalysts, and the spatial separation of electrons and holes with high redox potentials of ECB (-1.15 eV) and EVB (1.65 eV) versus NHE can efficiently drive CO2 photoreduction to methanol in pure water, which is further confirmed by DFT calculation. The Z-scheme heterostructure Cu2 O/PCN exhibits a high methanol yield of 276 µmol g-1 in 8 h with ca. 100% selectivity, much superior to that of isolated Cu2 O and PCN, and all the reported Cu2 O-based heterostructures. This work provides a unique strategy to efficiently and selectively promote the conversion of CO2 and H2 O into high-value chemicals by constructing a low-cost Z-scheme heterostructure.
Keyphrases
- low cost
- visible light
- metal organic framework
- aqueous solution
- hydrogen peroxide
- drug delivery
- mass spectrometry
- dna damage
- carbon dioxide
- gold nanoparticles
- oxidative stress
- nitric oxide
- high resolution
- molecular dynamics
- reduced graphene oxide
- liquid chromatography
- room temperature
- simultaneous determination
- electron transfer
- solid phase extraction