Title :
Development of ZnSiP
for Si-Based Tandem Solar Cells
Author :
Martinez, Aaron D. ; Ortiz, Brenden R. ; Johnson, Nicole E. ; Baranowski, Lauryn L. ; Krishna, Lakshmi ; Sukgeun Choi ; Dippo, Patricia C. ; To, Bobby ; Norman, Andrew G. ; Stradins, Paul ; Stevanovic, Vladan ; Toberer, Eric S. ; Tamboli, Adele C.
Author_Institution :
Dept. of Phys., Colorado Sch. of Mines, Golden, CO, USA
Abstract :
A major technological challenge in photovoltaics is the implementation of a lattice matched optically efficient material to be used in conjunction with silicon for tandem photovoltaics. Detailed balance calculations predict an increase in efficiency of up to 12 percentage points for a tandem cell compared with single junction silicon. Given that the III-V materials currently hold world record efficiencies, both for single and multijunction cells, it would be transformative to develop a material that has similar properties to the III-V´s which is also lattice matched to silicon. The II-IV-V2 chalcopyrites are a promising class of materials that could satisfy these criteria. ZnSiP2 in particular is known to have a bandgap of ~2 eV, a lattice mismatch with silicon of 0.5%, and is earth abundant. Its direct bandgap is symmetry-forbidden. We have grown single crystals of ZnSiP2 by a flux growth technique. Structure and phase purity have been confirmed by X-ray diffraction and transmission electron microscopy. Optical measurements, along with a calculation of the absorption spectrum, confirm the ~2 eV bandgap. Because of its structural similarity to both crystalline silicon and the III-V´s, ZnSiP2 is expected to have good optoelectronic performance.
Keywords :
absorption coefficients; elemental semiconductors; energy gap; silicon; silicon compounds; solar cells; transmission electron microscopy; zinc compounds; II-IV-V2 chalcopyrites; Si-based tandem solar cells; X-ray diffraction; ZnSiP2-Si; absorption spectrum; direct bandgap; flux growth technique; lattice matched optically efficient material; multijunction cells; optical measurements; phase purity; single crystal growth; single junction cells; single-junction silicon; symmetry-forbidden; tandem photovoltaics; transmission electron microscopy; Absorption; Crystals; Photonic band gap; Silicon; Surface morphology; Zinc; Density functional theory (DFT); ZnSiP2; photovoltaic cells; silicon; tandem photovoltaics;
Journal_Title :
Photovoltaics, IEEE Journal of
DOI :
10.1109/JPHOTOV.2014.2362305