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Tytuł pozycji:

Low-Cost, Efficient, and Durable H 2 Production by Photoelectrochemical Water Splitting with CuGa 3 Se 5 Photocathodes.

Tytuł:
Low-Cost, Efficient, and Durable H 2 Production by Photoelectrochemical Water Splitting with CuGa 3 Se 5 Photocathodes.
Autorzy:
Muzzillo CP; National Renewable Energy Laboratory , 15013 Denver W Pkwy , Golden , Colorado 80401 , United States.
Klein WE; National Renewable Energy Laboratory , 15013 Denver W Pkwy , Golden , Colorado 80401 , United States.
Li Z; National Renewable Energy Laboratory , 15013 Denver W Pkwy , Golden , Colorado 80401 , United States.
DeAngelis AD; Hawaii Natural Energy Institute , University of Hawaii , 1680 East-West Rd POST 109 , Honolulu , Hawaii 96822 , United States.
Horsley K; Hawaii Natural Energy Institute , University of Hawaii , 1680 East-West Rd POST 109 , Honolulu , Hawaii 96822 , United States.
Zhu K; National Renewable Energy Laboratory , 15013 Denver W Pkwy , Golden , Colorado 80401 , United States.
Gaillard N; Hawaii Natural Energy Institute , University of Hawaii , 1680 East-West Rd POST 109 , Honolulu , Hawaii 96822 , United States.
Źródło:
ACS applied materials & interfaces [ACS Appl Mater Interfaces] 2018 Jun 13; Vol. 10 (23), pp. 19573-19579. Date of Electronic Publication: 2018 May 29.
Typ publikacji:
Journal Article
Język:
English
Imprint Name(s):
Original Publication: Washington, D.C. : American Chemical Society
Contributed Indexing:
Keywords: chalcopyrite; hydrogen; photoelectrochemical; polycrystalline; water splitting
Entry Date(s):
Date Created: 20180517 Date Completed: 20180731 Latest Revision: 20180731
Update Code:
20240104
DOI:
10.1021/acsami.8b01447
PMID:
29767955
Czasopismo naukowe
Photoelectrochemical (PEC) water splitting is an elegant method of converting sunlight and water into H 2 fuel. To be commercially advantageous, PEC devices must become cheaper, more efficient, and much more durable. This work examines low-cost polycrystalline chalcopyrite films, which are successful as photovoltaic absorbers, for application as PEC absorbers. In particular, Cu-Ga-Se films with wide band gaps can be employed as top cell photocathodes in tandem devices as a realistic route to high efficiencies. In this report, we demonstrate that decreasing Cu/Ga composition from 0.66 to 0.31 in Cu-Ga-Se films increased the band gap from 1.67 to 1.86 eV and decreased saturated photocurrent density from 18 to 8 mA/cm 2 as measured by chopped-light current-voltage (CLIV) measurements in a 0.5 M sulfuric acid electrolyte. Buffer and catalyst surface treatments were not applied to the Cu-Ga-Se films, and they exhibited promising stability, evidenced by unchanged CLIV after 9 months of storage in air. Finally, films with Cu/Ga = 0.36 (approximately stoichiometric CuGa 3 Se 5 ) and 1.86 eV band gaps had exceptional durability and continuously split water for 17 days (∼12 mA/cm 2 at -1 V vs RHE). This is equivalent to ∼17 200 C/cm 2 , which is a world record for any polycrystalline PEC absorber. These results indicate that CuGa 3 Se 5 films are prime candidates for cheaply achieving efficient and durable PEC water splitting.

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