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Department of Energy Science and Engineering
Photo & Electrochemical Materials Science & Engineering Lab
1. Journal Articles
Hybrid CuxO-TiO2 Heterostructured Composites for Photocatalytic CO2 Reduction into Methane Using Solar Irradiation: Sunlight into Fuel
Park, Seung-Min
;
Razzaq, Abdul
;
Park, Young Ho
;
Sorcar, Saurav
;
Park, Yiseul
;
Grimes, C. A.
;
In, Su-Il
(Legacy) Smart Textile Convergence Research Group
1. Journal Articles
Department of Energy Science and Engineering
Photo & Electrochemical Materials Science & Engineering Lab
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Title
Hybrid CuxO-TiO2 Heterostructured Composites for Photocatalytic CO2 Reduction into Methane Using Solar Irradiation: Sunlight into Fuel
DGIST Authors
Park, Yiseul
;
In, Su-Il
Issued Date
2016-11
Citation
Park, Seung-Min. (2016-11). Hybrid CuxO-TiO2 Heterostructured Composites for Photocatalytic CO2 Reduction into Methane Using Solar Irradiation: Sunlight into Fuel. doi: 10.1021/acsomega.6b00164
Type
Article
Article Type
Article
Keywords
THIN-FILMS
;
TIO2
;
CUO
;
CONVERSION
;
HYDROGEN
;
WATER
;
PHOTOCATHODES
;
CU2O/TIO2
;
ARRAYS
ISSN
2470-1343
Abstract
Photocatalytic CO2 conversion to fuel offers an exciting prospect for solar energy storage and transportation thereof. Several photocatalysts have been employed for CO2 photoreduction; the challenge of realizing a low-cost, readily synthesized photocorrosion-stable photocatalytic material that absorbs and successfully utilizes a broad portion of the solar spectrum energy is as yet unmet. Herein, a mesoporous p-type/n-type heterojunction material, CuxO-TiO2 (x = 1, 2), is synthesized via annealing of Cu/Cu2O nanocomposites mixed with a TiO2 precursor (TiCl4). Such an experimental approach in which two materials of diverse bandgaps are coupled provides a simultaneous opportunity for greater light absorption and rapid charge separation because of the intrinsic p-n heterojunction nature of the material. As detailed herein, this heterostructured photocatalyst demonstrates an improved photocatalytic activity. With the CO2 reduction of our optimal sample (augmented light absorption, efficacious charge separation, and mesoporosity) that utilizes no metal cocatalysts, a remarkable methane yield of 221.63 ppm·g-1·h-1 is achieved. © 2016 American Chemical Society.
URI
http://hdl.handle.net/20.500.11750/5669
DOI
10.1021/acsomega.6b00164
Publisher
American Chemical Society
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