Hollow InVO4 Nanocuboid Assemblies toward Promoting Photocatalytic N2 Conversion Performance.
Qiutong HanXiaowan BaiJingming ChenShengnan FengWa GaoWenguang TuXiaoyong WangJinlan WangBi JiaQing ShenYong ZhouZhigang ZouPublished in: Advanced materials (Deerfield Beach, Fla.) (2021)
The unique InVO4 mesocrystal superstructure, particularly with cubical skeleton and hollow interior, which consists of numerous nanocube building blocks, closely stacking by stacking, aligning by aligning, and sharing the same crystallographic orientations, is successfully fabricated. The synergy of a reaction-limited aggregation and an Ostwald ripening process is reasonably proposed for the growth of this unique superstructure. Both single-particle surface photovoltage and confocal fluorescence spectroscopy measurements demonstrate that the long-range ordered mesocrystal superstructures can significantly retard the recombination of electron-hole pairs through the creation of a new pathway for anisotropic electron flow along the inter-nanocubes. This promising charge mobility feature of the superstructure greatly contributes to the pronounced photocatalytic performance of the InVO4 mesocrystal toward fixation of N2 into NH3 with the quantum yield of 0.50% at wavelength of 385 nm.
Keyphrases
- solar cells
- highly efficient
- visible light
- single molecule
- reduced graphene oxide
- molecularly imprinted
- energy transfer
- metal organic framework
- electron transfer
- perovskite solar cells
- minimally invasive
- molecular dynamics
- machine learning
- dna repair
- high resolution
- photodynamic therapy
- social media
- dna damage
- health information
- optical coherence tomography
- deep learning
- room temperature
- solid state
- raman spectroscopy
- gold nanoparticles
- mass spectrometry
- finite element
- light emitting