Phase-pure iron pyrite (FeS2) micro- and nano-sized crystals synthesized by simple one-step microwave-assisted hydrothermal method

被引:20
作者
Henriquez, Rodrigo [1 ]
Vasquez, Cesar [1 ]
Munoz, Eduardo [1 ]
Grez, Paula [1 ]
Martin, Francisco [2 ]
Ramos-Barrado, Jose R. [2 ]
Dalchiele, Enrique A. [3 ,4 ]
机构
[1] Pontificia Univ Catolica Valparaiso, Fac Ciencias, Inst Quim, Av Brasil 2950, Valparaiso, Chile
[2] Univ Malaga, Dept Fis Aplicada & Ingn Quim, Lab Mat & Superficies, Unidad Asociada CSIC, E-29071 Malaga, Spain
[3] UDELAR, Fac Ingn, Inst Fis, Julio Herrera & Reissig 565,CC 30, Montevideo 11000, Uruguay
[4] UDELAR, Fac Ingn, CINQUIFIMA, Julio Herrera & Reissig 565,CC 30, Montevideo 11000, Uruguay
关键词
Iron pyrite; Microwave-assisted hydrothermal process; Nanocrystals; Optical properties; THIN-FILMS; OPTICAL-PROPERTIES; ENHANCED PHOTOCURRENT; SOLAR-CELLS; BAND-GAP; NANOPARTICLES; ELECTRODEPOSITION; TRANSPORT; NANOCRYSTALS; ORIENTATION;
D O I
10.1016/j.physe.2019.113881
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Iron pyrite micro- and nano-sized crystals are desirable as active materials in lithium ion batteries and photovoltaics, and are particularly suitable for nanocrystal inks for roll-to-roll deposited or ink-jet printed solar cells. In this paper we report the synthesis of iron pyrite micro- and nano-sized crystals via simple and convenient green one-step microwave-assisted hydrothermal (M - H) process at relatively low growth temperatures, using commonly used precursors such as FeCl3, Na2S and S-8 and. The structural, morphological and optical properties of the resulting nanostructured materials have been thoroughly investigated for two typical M - H growth temperatures. X-ray diffraction (XRD) pattern and Raman data revealed good crystalline quality for the as synthesized pyrite NCs. Typical XRD patterns show the dominant peaks which can be indexed as a pure cubic phase of FeS2, with lattice constant values close to the lattice parameters reported for FeS2, and in agreement with a stoichiometric pyrite phase. XRD and Raman analysis also confirm that no other impurities phases such as hexagonal FeS2, marcasite, pyrrhotite, greigite, S or Fe-O compounds were detected, confirming the high purity of the synthesized iron pyrite nanocrystals. Various shapes of pyrite like quasi-cubic, cubic and flower-like FeS2 nanocrystals have been observed, which can be modulated by using different synthetic conditions. The sizes of the pyrite micro- and nanostructures were in the range of 150 nm to 1 mu m as obtained. The present study indicates that the M - H method is a facile one-step way to obtain phase pure iron pyrite micro- and nano-sized crystals. Optical characterization confirms direct bandgap transitions (values of 2.61 eV and 2.55 eV for iron pyrite NCs samples hydrothermal grown at 130 degrees C and 160 degrees C, respectively), and indirect bandgap transitions (values of 1.19 eV and 1.52 eV for samples hydrothermal grown at 130 degrees C and 160 degrees C, respectively). Optical studies show high absorbance in the entire UV-Vis wavelength range making the as-synthesized pyrite nanocrystals potential candidate as absorber in nanoscale photovoltaic solar cells.
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页数:11
相关论文
共 68 条
[1]  
[Anonymous], LOW COST NANOMATERIA
[2]  
[Anonymous], SCI REP
[3]  
[Anonymous], MAT RES SOC S P
[4]   Experimental and numerical study of iron pyrite nanoparticles synthesis based on hydrothermal method in a laboratory-scale stirred autoclave [J].
Azarafza, Abouzar ;
Ziarati, Mahmoud ;
Khandan, Nahid ;
Aminian, Javad ;
Esfeh, Hamid Kazemi ;
Setarekokab, Mohammad Reza .
POWDER TECHNOLOGY, 2016, 287 :177-189
[5]   Atmospheric-Pressure Chemical Vapor Deposition of Iron Pyrite Thin Films [J].
Berry, Nicholas ;
Cheng, Ming ;
Perkins, Craig L. ;
Limpinsel, Moritz ;
Hemminger, John C. ;
Law, Matt .
ADVANCED ENERGY MATERIALS, 2012, 2 (09) :1124-1135
[6]   Thin film iron pyrite deposited by hybrid sputtering/co-evaporation as a hole transport layer for sputtered CdS/CdTe solar cells [J].
Bhandari, Khagendra P. ;
Tan, Xinxuan ;
Zereshki, Peymon ;
Alfadhili, Fadhil K. ;
Phillips, Adam B. ;
Koirala, Prakash ;
Heben, Michael J. ;
Collins, Robert W. ;
Ellingson, Randy J. .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2017, 163 :277-284
[7]   Optical Generation and Transport of Charges in Iron Pyrite Nanocrystal Films and Subsequent Injection into SnO2 [J].
Bi, Yu ;
Felter, Kevin ;
Hoogland, Sjoerd ;
Grozema, Ferdinand C. ;
Dennler, Gilles ;
Houtepen, Arjan J. ;
Savenije, Tom J. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2016, 120 (39) :22155-22162
[8]   Air Stable, Photosensitive, Phase Pure Iron Pyrite Nanocrystal Thin Films for Photovoltaic Application [J].
Bi, Yu ;
Yuan, Yongbo ;
Exstrom, Christopher L. ;
Darveau, Scott A. ;
Huang, Jinsong .
NANO LETTERS, 2011, 11 (11) :4953-4957
[9]   Synthesis, Characterization, and Variable Range Hopping Transport of Pyrite (FeS2) Nanorods, Nanobelts, and Nanoplates [J].
Caban-Acevedo, Miguel ;
Liang, Dong ;
Chew, Kit S. ;
DeGrave, John P. ;
Kaiser, Nicholas S. ;
Jin, Song .
ACS NANO, 2013, 7 (02) :1731-1739
[10]   Prussian Blue-Derived Synthesis of Hollow Porous Iron Pyrite Nanoparticles as Platinum-Free Counter Electrodes for Highly Efficient Dye-Sensitized Solar Cells [J].
Chen, Jeffrey E. ;
Fan, Miao-Syuan ;
Chen, Yen-Lin ;
Deng, Yu-Heng ;
Kim, Jung Ho ;
Alamri, Hatem R. ;
Alothman, Zeid A. ;
Yamauchi, Yusuke ;
Ho, Kuo-Chuan ;
Wu, Kevin C. -W. .
CHEMISTRY-A EUROPEAN JOURNAL, 2017, 23 (54) :13284-13288