Si photocathode with Ag-supported dendritic Cu catalyst for CO2 reduction

被引:110
作者
Gurudayal [1 ,2 ]
Beeman, Jeffrey W. [1 ,3 ]
Bullock, James [4 ]
Wang, Hao [5 ,6 ]
Eichhorn, Johanna [1 ]
Towle, Clarissa [2 ,3 ]
Javey, Ali [3 ,4 ]
Toma, Francesca M. [1 ]
Mathews, Nripan [5 ,6 ]
Ager, Joel W. [1 ,2 ,3 ]
机构
[1] Lawrence Berkeley Natl Lab, Joint Ctr Artificial Photosynth, 1 Cyclotron Rd, Berkeley, CA 94720 USA
[2] Univ Calif Berkeley, Dept Mat Sci & Engn, Berkeley, CA 94720 USA
[3] Lawrence Berkeley Natl Lab, Mat Sci Div, 1 Cyclotron Rd, Berkeley, CA 94720 USA
[4] Univ Calif Berkeley, Dept Elect Engn & Comp Sci, Berkeley, CA 94720 USA
[5] Nanyang Technol Univ, Sch Mat Sci & Engn, 50 Nanyang Ave, Singapore 639798, Singapore
[6] ERI N, Res Techno Plaza,X Frontier Block,Level 5, Singapore 637553, Singapore
基金
新加坡国家研究基金会;
关键词
EFFICIENT PHOTOELECTROCHEMICAL REDUCTION; SOLAR-DRIVEN REDUCTION; AQUEOUS CARBON-DIOXIDE; ELECTROCHEMICAL REDUCTION; ENERGY-CONVERSION; MONOLITHIC DEVICE; GALLIUM-PHOSPHIDE; WATER; CELLS; PHOTOSYNTHESIS;
D O I
10.1039/c8ee03547d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Si photocathodes integrated with Ag-supported dendritic Cu catalysts are used to perform light-driven reduction of CO2 to C-2 and C-3 products in aqueous solution. A back illumination geometry with an n-type Si absorber was used to permit the use of absorbing metallic catalysts. Selective carrier collection was accomplished by a p(+) implantation on the illumination side and an n(+) implantation followed by atomic layer deposition of TiO2 on the electrolyte site. The Ag-supported dendritic Cu CO2 reduction catalyst was formed by evaporation of Ag followed by high-rate electrodeposition of Cu to form a high surface area structure. Under simulated 1 sun illumination in 0.1 M CsHCO3 saturated with CO2, the photovoltage generated by the Si (approximate to 600 mV) enables C-2 and C-3 products to be produced at -0.4 vs. RHE. Texturing of both sides of the Si increases the light-limited current density, due to reduced reflection on the illumination side, and also deceases the onset potential. Under simulated diurnal illumination conditions photocathodes maintain over 60% faradaic efficiency to hydrocarbon and oxygenate products (mainly ethylene, ethanol, propanol) for several days. After 10 days of testing, contamination from the counter electrode is observed, which causes an increase in hydrogen production. This effect is mitigated by a regeneration procedure which restores the original catalyst selectivity. A tandem, self-powered CO2 reduction device was formed by coupling a Si photocathode with two series-connected semitransparent CH3NH3PbI3 perovskite solar cells, achieving an efficiency for the conversion of sunlight to hydrocarbons and oxygenates of 1.5% (3.5% for all products).
引用
收藏
页码:1068 / 1077
页数:10
相关论文
共 80 条
[1]   Experimental demonstrations of spontaneous, solar-driven photoelectrochemical water splitting [J].
Ager, Joel W. ;
Shaner, Matthew R. ;
Walczak, Karl A. ;
Sharp, Ian D. ;
Ardo, Shane .
ENERGY & ENVIRONMENTAL SCIENCE, 2015, 8 (10) :2811-2824
[2]  
[Anonymous], 2005, SPRINGER, pA15
[3]   A monolithic device for CO2 photoreduction to generate liquid organic substances in a single-compartment reactor [J].
Arai, Takeo ;
Sato, Shunsuke ;
Morikawa, Takeshi .
ENERGY & ENVIRONMENTAL SCIENCE, 2015, 8 (07) :1998-2002
[4]   State of the art and perspectives in catalytic processes for CO2 conversion into chemicals and fuels: The distinctive contribution of chemical catalysis and biotechnology [J].
Aresta, Michele ;
Dibenedetto, Angela ;
Quaranta, Eugenio .
JOURNAL OF CATALYSIS, 2016, 343 :2-45
[5]   Nanostructured transition metal dichalcogenide electrocatalysts for CO2 reduction in ionic liquid [J].
Asadi, Mohammad ;
Kim, Kibum ;
Liu, Cong ;
Addepalli, Aditya Venkata ;
Abbasi, Pedram ;
Yasaei, Poya ;
Phillips, Patrick ;
Behranginia, Amirhossein ;
Cerrato, Jose M. ;
Haasch, Richard ;
Zapol, Peter ;
Kumar, Bijandra ;
Klie, Robert F. ;
Abiade, Jeremiah ;
Curtiss, Larry A. ;
Salehi-Khojin, Amin .
SCIENCE, 2016, 353 (6298) :467-470
[6]   ELECTROCHEMICAL MEASUREMENTS ON THE PHOTO-ELECTROCHEMICAL REDUCTION OF AQUEOUS CARBON-DIOXIDE ON PARA-GALLIUM PHOSPHIDE AND PARA-GALLIUM ARSENIDE SEMICONDUCTOR ELECTRODES [J].
AURIANBLAJENI, B ;
HALMANN, M ;
MANASSEN, J .
SOLAR ENERGY MATERIALS, 1983, 8 (04) :425-440
[7]   Selective solar-driven reduction of CO2 to methanol using a catalyzed p-GaP based photoelectrochemical cell [J].
Barton, Emily E. ;
Rampulla, David M. ;
Bocarsly, Andrew B. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (20) :6342-+
[8]   Spinel Co3O4 nanomaterials for efficient and stable large area carbon-based printed perovskite solar cells [J].
Bashi, Amna ;
Shukla, Sudhanshu ;
Lew, Jia Haur ;
Shukla, Shashwat ;
Bruno, Annalisa ;
Gupta, Disha ;
Baikie, Tom ;
Patidar, Rahul ;
Akhter, Zareen ;
Priyadarshi, Anish ;
Mathews, Nripan ;
Mhaisalkar, Subodh G. .
NANOSCALE, 2018, 10 (05) :2341-2350
[9]   A modular device for large area integrated photoelectrochemical water-splitting as a versatile tool to evaluate photoabsorbers and catalysts [J].
Becker, J. -P. ;
Turan, B. ;
Smirnov, V. ;
Welter, K. ;
Urbain, F. ;
Wolff, J. ;
Haas, S. ;
Finger, F. .
JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (10) :4818-4826
[10]   Examining architectures of photoanode-photovoltaic tandem cells for solar water splitting [J].
Brillet, Jeremie ;
Cornuz, Maurin ;
Le Formal, Florian ;
Yum, Jun-Ho ;
Graetzel, Michael ;
Sivula, Kevin .
JOURNAL OF MATERIALS RESEARCH, 2010, 25 (01) :17-24