Title :
Micrometer-Thin Crystalline-Silicon Solar Cells Integrating Numerically Optimized 2-D Photonic Crystals
Author :
Depauw, Valerie ; Xianqin Meng ; El Daif, Ounsi ; Gomard, Guillaume ; Lalouat, Loic ; Drouard, Emmanuel ; Trompoukis, Christos ; Fave, Alain ; Seassal, Christian ; Gordon, I.
Author_Institution :
Silicon Photovoltaics Dept., Imec, Leuven, Belgium
Abstract :
A 2-D photonic crystal was integrated experimentally into a thin-film crystalline-silicon solar cell of 1-μm thickness, after numerical optimization maximizing light absorption in the active material. The photonic crystal boosted the short-circuit current of the cell, but it also damaged its open-circuit voltage and fill factor, which led to an overall decrease in performances. Comparisons between modeled and actual optical behaviors of the cell, and between ideal and actual morphologies, show the global robustness of the nanostructure to experimental deviations, but its particular sensitivity to the conformality of the top coatings and the spread in pattern dimensions, which should not be neglected in the optical model. As for the electrical behavior, the measured internal quantum efficiency shows the strong parasitic absorptions from the transparent conductive oxide and from the back-reflector, as well as the negative impact of the nanopattern on surface passivation. Our exemplifying case, thus, illustrates and experimentally confirms two recommendations for future integration of surface nanostructures for light trapping purposes: 1) the necessity to optimize absorption not for the total stack but for the single active material, and 2) the necessity to avoid damage to the active material by pattern etching.
Keywords :
coatings; elemental semiconductors; etching; nanopatterning; nanostructured materials; numerical analysis; passivation; photonic crystals; semiconductor thin films; short-circuit currents; silicon; solar cells; visible spectra; Si; back-reflector; fill factor; integrated 2D photonic crystals; internal quantum efficiency; light absorption; light trapping; micrometer-thin film crystalline-silicon solar cells; morphologies; nanopattern; numerical optimization; open-circuit voltage; optical behaviors; optical model; parasitic absorptions; pattern etching; short-circuit current; single active material; surface nanostructures; surface passivation; top coatings; transparent conductive oxide; Absorption; Indium tin oxide; Photonic crystals; Photonics; Photovoltaic cells; Silicon; Finite-difference time domain (FDTD) simulation; heterojunction; laser holographic lithography; light trapping; nanophotonics; photonic crystals; photovoltaic cells; thin-film crystalline silicon;
Journal_Title :
Photovoltaics, IEEE Journal of
DOI :
10.1109/JPHOTOV.2013.2286521