International audienceIn High Performance Multi-Crystalline-Silicon (HPMC-Si) ingots, small seed grains generate grain boundariesthat can terminate the propagation of dislocation clusters. Here, we focus on the seed template formation and its impact on the initial growth by directional solidification utilizing metallography, photoluminescence, and EBSD analysis. In the seed region, two randomly oriented grain morphologies are found: a genuine nonmelted seed from the poly-Si chunks, and a re-solidified infiltrated molten silicon region. All grains grow by epitaxy on the seed grains and grains grown from wider grains in the seed, reach a higher solidification height
International audienceDirectional solidification of a cast mono-seed and of a FZ-seed was performed ...
High Performance multicrystalline silicon ingots are mostly produced with seeded growth on small siz...
International audienceDirectional solidification from mono-crystalline Si seeds having different ori...
International audienceIn High Performance Multi-Crystalline-Silicon (HPMC-Si) ingots, small seed gra...
This work targets multiple approaches for controlling the initial growth conditions of directional s...
High performance multi-crystalline silicon (HPM-Si) for the use in photovoltaics is characterized by...
Different silicon feedstock materials, Single Crystalline Crushed (SCS), Fluidized-Bed-Reactor (FBR)...
International audienceThis work is dedicated to the grain structure formation in silicon ingots with...
In this work, the growth behavior inside and above seed gaps during directional solidification of mo...
International audienceThis work is dedicated to the advanced in situ X-ray imaging and complementary...
International audienceThis work is dedicated to the advanced in situ X-ray imaging and complementary...
We have studied the dislocation generation and propagation from the seed crystals during seed cast S...
Wafers from three heights and two different lateral positions (corner and centre) of four industrial...
International audienceGrain orientation and competition during growth has been analyzed in direction...
The grain structure of high-performance (HP) multicrystalline silicon (mc-Si) is characterized by a ...
International audienceDirectional solidification of a cast mono-seed and of a FZ-seed was performed ...
High Performance multicrystalline silicon ingots are mostly produced with seeded growth on small siz...
International audienceDirectional solidification from mono-crystalline Si seeds having different ori...
International audienceIn High Performance Multi-Crystalline-Silicon (HPMC-Si) ingots, small seed gra...
This work targets multiple approaches for controlling the initial growth conditions of directional s...
High performance multi-crystalline silicon (HPM-Si) for the use in photovoltaics is characterized by...
Different silicon feedstock materials, Single Crystalline Crushed (SCS), Fluidized-Bed-Reactor (FBR)...
International audienceThis work is dedicated to the grain structure formation in silicon ingots with...
In this work, the growth behavior inside and above seed gaps during directional solidification of mo...
International audienceThis work is dedicated to the advanced in situ X-ray imaging and complementary...
International audienceThis work is dedicated to the advanced in situ X-ray imaging and complementary...
We have studied the dislocation generation and propagation from the seed crystals during seed cast S...
Wafers from three heights and two different lateral positions (corner and centre) of four industrial...
International audienceGrain orientation and competition during growth has been analyzed in direction...
The grain structure of high-performance (HP) multicrystalline silicon (mc-Si) is characterized by a ...
International audienceDirectional solidification of a cast mono-seed and of a FZ-seed was performed ...
High Performance multicrystalline silicon ingots are mostly produced with seeded growth on small siz...
International audienceDirectional solidification from mono-crystalline Si seeds having different ori...