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Impact of excess phosphorus doping and Si crystalline defects on Ag crystallite nucleation and growth in silver screen-printed Si solar cells

Good quality contacts between metal and silicon emitter are crucial for high crystalline solar cell efficiencies. We investigate the impact of defects originating from electrically inactive phosphorus on contact formation within silver thick film metallized silicon solar cells. For this purpose, emi...

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Published in:Progress in photovoltaics 2015-03, Vol.23 (3), p.367-375
Main Authors: Cabrera, Enrique, Olibet, Sara, Rudolph, Dominik, Vullum, Per Erik, Kopecek, Radovan, Reinke, Daniel, Herzog, Carmen, Schwaderer, Daniel, Schubert, Gunnar
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cited_by cdi_FETCH-LOGICAL-c4340-d2e44335df919ffd616941e284b740d47d2f79501f9c217a0ec85527a8af9c433
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container_issue 3
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container_title Progress in photovoltaics
container_volume 23
creator Cabrera, Enrique
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Rudolph, Dominik
Vullum, Per Erik
Kopecek, Radovan
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Herzog, Carmen
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Schubert, Gunnar
description Good quality contacts between metal and silicon emitter are crucial for high crystalline solar cell efficiencies. We investigate the impact of defects originating from electrically inactive phosphorus on contact formation within silver thick film metallized silicon solar cells. For this purpose, emitters with varying sheet resistance, depth, and dead layer were metallized with silver pastes from different generations. Macroscopic contact resistivity measurements were compared with the microscopic contact configurations studied by scanning electron microscopy. The density of direct contacts between Ag crystallites grown into Si and the Ag finger bulk is essential for low contact resistivity. The presence of glass‐free regions needed for such direct contacts depends on the paste composition and on the surface texture, and does not vary with the Si emitter properties. Indeed, the decrease in contact resistivity correlates with increasing density of Ag crystallites embedded in the Si surface. Furthermore, the density of Si surface‐embedded Ag crystallites scales proportional to the electrically inactive P and is independent of the sheet resistance. Using the newest silver paste, the Ag crystallite density is independent of the emitter doping, but the Ag crystallite size increases as a function of the thickness of the dead layer. Transmission electron microscopy characterization of the excess P‐doped Si crystal lattice shows that significant strain and Si bond weakening may play a major role for both Ag crystallite nucleation and growth. Finally, we studied Si crystal defects by metallizing nanocracks, dislocations, and grain boundaries and found that Ag crystallite nucleation is defect‐property dependent. Copyright © 2013 John Wiley & Sons, Ltd. The impact of phosphorus doping on screen‐printed silver contacts is studied microscopically. We find that the density of Si surface‐embedded Ag crystallites and their penetration depths scale proportional to the electrically inactive P. Transmission electron microscopy characterization of the excess P‐doped Si crystal lattice shows that significant strain and Si bond weakening may play a major role for both Ag crystallite nucleation and growth. Furthermore, we metallize different Si crystal defects finding that Ag crystallite nucleation is defect‐property dependent.
doi_str_mv 10.1002/pip.2440
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Finally, we studied Si crystal defects by metallizing nanocracks, dislocations, and grain boundaries and found that Ag crystallite nucleation is defect‐property dependent. Copyright © 2013 John Wiley &amp; Sons, Ltd. The impact of phosphorus doping on screen‐printed silver contacts is studied microscopically. We find that the density of Si surface‐embedded Ag crystallites and their penetration depths scale proportional to the electrically inactive P. Transmission electron microscopy characterization of the excess P‐doped Si crystal lattice shows that significant strain and Si bond weakening may play a major role for both Ag crystallite nucleation and growth. Furthermore, we metallize different Si crystal defects finding that Ag crystallite nucleation is defect‐property dependent.</abstract><cop>Bognor Regis</cop><pub>Blackwell Publishing Ltd</pub><doi>10.1002/pip.2440</doi><tpages>9</tpages></addata></record>
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subjects contact formation
Crystal defects
Crystallites
Density
Electrical resistivity
emitter dead layer
metallization
Nucleation
Silicon
silicon solar cells
Silver
silver paste
Solar cells
TEM analysis
title Impact of excess phosphorus doping and Si crystalline defects on Ag crystallite nucleation and growth in silver screen-printed Si solar cells
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