TY - GEN A1 - Meinel, Birgit A1 - Koschwitz, Tim A1 - Heinemann, Robert A1 - Acker, Jörg T1 - The texturization process during horizontal acidic etching of multi-crystalline silicon wafers T2 - Materials Science in Semiconductor Processing N2 - Horizontal wet-chemical etching of silicon wafers in an HF/HNO3/H2SiF6 mixture is the most widely-used technique to texturize multi-crystalline silicon wafers for solar cell production. For the first time, the etch rates were determined separately for the upper and lower side during the horizontal texturization and the their different morphologies. The dependency of the surface morphology from the etch rate and etch depth is proven. Furthermore, the influence of the temperature and stirring rates on the morphological development for the upper and lower side of the wafer were examined. From temperature-dependent measurements, activation energies in the range from 17 kJ/mol to 40 kJ/mol on the upper side and from 23 kJ/mol to 40 kJ/mol on the lower side dependent from the etching time were determined. The observed results reveal a connection between the etch depth, the agitation of the etch solution, the morphology and the reflectivity of the separate wafer sides. KW - Acidic etching KW - Surface properties KW - Confocal microscopy KW - Reflectivity KW - Activation energy KW - silicon KW - HF/HNO3 mixture KW - solar cell Y1 - 2014 UR - http://www.sciencedirect.com/science/article/pii/S136980011400482X U6 - https://doi.org/10.1016/j.mssp.2014.08.047 SN - 1369-8001 VL - 26 SP - 695 EP - 703 ER - TY - CHAP A1 - Acker, Jörg A1 - Langner, Thomas A1 - Koschwitz, Tim ED - Marciniec, Bogdan T1 - Lattice-strain induced chemical reactivity of silicon T2 - 8th European Silicon Days 2018, Conference Proceedings N2 - Silicon wafer for solar application are produced by multi-wire sawing from 12x12 cm2 silicon bricks. After slicing the wafer surface consists of a several micrometer surface layer of very heterogeneous constitution, the so called saw damage. The topmost layer of the saw damage consists of debris, amorphous silicon and high-pressure silicon phases followed by a very defect-rich and lattice-strained region of fractures, cracks, and rifts caused by the rupture of the silicon lattice during the slicing process [1,2]. Such a damaged surface exhibits very poor semiconductor properties; therefore the saw damage is removed by chemical etching using mixtures of HF, HNO3 and H2SiF6 in order to produce solar cells. Recent investigations showed that the etching of the saw damage is a very heterogeneous process [3-5]. The surface consists of spots at which the etching forms very rapidly deep grooves while other spots remain unetched over a considerably long time. Some of the rapidly formed grooves seem to remain their shape while others grow because of an attack of the side walls, however, without making these grooves significantly deeper. So far there is no explanation for this behavior. The present work is the first study about the locally resolved etching behavior of lattice-strained silicon. The surface of polished single-crystal wafers were scratched with a diamond tip under defined conditions. By means of confocal Raman microscopy the local state of the silicon lattice in and nearby the scratches were characterized in terms of compression and tensile stress with a lateral resolution of 2 μm. Then, the scratches were etched stepwise using HF-HNO3-H2SiF6 mixtures and measured by confocal microscopy to quantify the local removal of silicon and measured by confocal Raman microscopy to monitor the lattice state. For the first time this study reveals and quantifies the impact of tensile and compressive lattice stress on the etch rate of silicon with the major outcome, that stress leads to a significantly anisotropic etching behavior. From the time dependent development of the scratch profiles and the topography of the surrounding wafer areas a detailed picture about the formation of highly reactive species and etching behavior against unstrained silicon is deduced. KW - silicon KW - lattice strain KW - reactivity KW - etching KW - Raman microscopy KW - confocal microscopy Y1 - 2016 SP - S. 124 PB - Wielkopolska Centre for Advanced Technologies, Adam Mickiewicz University CY - Poznań, Poland ER - TY - GEN A1 - Meinel, Birgit A1 - Koschwitz, Tim A1 - Blocks, Christian A1 - Acker, Jörg T1 - Comparison of diamond wire cut and silicon carbide slurry processed silicon wafer surfaces after acidic texturisation T2 - Materials Science in Semiconductor Processing N2 - Our work focuses on the acidic etching of silicon wafers, cut via diamond wire (DW) or silicon carbide slurry process (SP). The DW and SP as-cut wafer surface structures have a significant impact on the evolution of the two resultant and different etched morphologies. The time-dependent development of the surface morphology for mono- and multi-crystalline wafers is compared and analyzed via etch rates, reflectivity measurements and confocal microscopy. The as-cut structure of the differently sawn wafers defines a template where the etch attack preferentially occurs and predetermines the texturisation of the etched surface. Based on the experimental results it is possible to lower the reflectivity of the SP-sawn wafers by varying the acidic mixture. On the contrary, the DW-sawn wafers obtain only a small enlargement of the folded surface area during acidic texturisation and no influence of different acidic etch solutions on the reflectivity values was found. To create homogeneously texturized DW-sawn wafers of low reflectivity, an adaptation of the sawing process as well as the development of new etchants and new etch conditions is necessary. KW - Surface morphology KW - Confocal microscopy KW - Acidic etching KW - Texturisation KW - Diamond wire sawing KW - Slurry sawing KW - silicon KW - solar cell KW - chemical analysis Y1 - 2014 UR - http://www.sciencedirect.com/science/article/pii/S1369800114001875 U6 - https://doi.org/10.1016/j.mssp.2014.03.046 SN - 1369-8001 VL - 26 SP - 93 EP - 100 ER -