Reduced TiO2 quantum dots/graphene for solar light driven CO2 reduction into precisely controlled C1 vs C2 hydrocarbon products without noble Co-catalyst

Author:

Hwang YunjuORCID,Sorcar Saurav,Lee JunhoORCID,Jung Jinwoo,Cho Changhee,In Su-ilORCID

Publisher

Elsevier BV

Subject

Electrical and Electronic Engineering,Physical and Theoretical Chemistry,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment

Reference57 articles.

1. Highly enhanced and stable activity of defect-induced titania nanoparticles for solar light-driven CO2 reduction into CH4, Mater;Sorcar;Today Off.,2017

2. Wafer-level artificial photosynthesis for CO2 reduction into CH4 and CO using GaN nanowires;Alotaibi;ACS Catal.,2015

3. High-rate solar-light photoconversion of CO2 to fuel: controllable transformation from C1 to C2 products;Sorcar;Energy Environ. Sci.,2018

4. Artificial photosynthesis of C1-C3 hydrocarbons from water and CO2 on titanate nanotubes decorated with nanoparticle elemental copper and CdS quantum dots;Park;J. Phys. Chem. A,2015

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