Title :
Local Thermographic Efficiency Analysis of Multicrystalline and Cast-Mono Silicon Solar Cells
Author :
RiBland, Sven ; Pletzer, Tobias M. ; Windgassen, Horst ; Breitenstein, O.
Author_Institution :
Max Planck Inst. of Microstructure Phys., Halle, Germany
Abstract :
Local dark current contributions of multicrystalline (mc) and cast-mono silicon (Si) solar cells were evaluated by using dark lock-in thermography (DLIT) measurements. The goal of these investigations was to evaluate the influence of the contact metallization on the efficiency. Both materials are treated by nearly the same solar cell process. Because of a special print design, the current density caused by the front-side and rear-side silver metallization can be measured separately, and their influence on the overall cell performance can be estimated. We measure an increase of the local saturation current density J01 by about 2.8 × 10-12 to 6.7 × 10-12A/cm2 at the soldering pads of the solar cell, compared with about 6 × 10-13 A/cm2 in the undisturbed regions. In the region of the front-side busbars, J01 increases locally by about 4.5 × 10-13 to 17.6 × 10-13A/cm2. The local depletion region recombination current, as well as the ohmic shunt current, is not affected by the screen-printed contacts. The bulk and back surface recombination in mc-Si within regions with a low amount of defects are almost the same as in cast-mono material. However, in regions of recombination active bulk defects, a significant increase in the recombination activity at the front contact was observed.
Keywords :
current density; dark conductivity; electron-hole recombination; elemental semiconductors; silicon; solar cells; Si; back surface recombination; bulk recombination; cast-mono silicon solar cells; contact metallization; current density; dark current; dark lock-in thermography measurement; front side silver metallization; local thermographic efficiency analysis; multicrystalline silicon solar cells; overall cell performance; rear side silver metallization; soldering pads; special print design; Crystalline materials; Current density; Dark current; Infrared imaging; Metallization; Photovoltaic cells; Silicon; Thermal analysis; Dark current; infrared imaging; local efficiency analysis; lock-in thermography; photovoltaic cells; thermal analysis;
Journal_Title :
Photovoltaics, IEEE Journal of
DOI :
10.1109/JPHOTOV.2013.2270355