4.5 Article

Correlation between Boron-Silicon Bonding Coordination, Oxygen Complexes and Electrical Properties for n-Type c-Si Solar Cell Applications

Journal

ENERGIES
Volume 13, Issue 12, Pages -

Publisher

MDPI
DOI: 10.3390/en13123057

Keywords

boron tribromide (BBr3); bonding coordination complex; boron-diffused layer; n-type c-Si solar cell

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Funding

  1. Korea Institute of Energy Technology Evaluation and Planning (KETEP) - Korea government (MOTIE) [20203030010310]
  2. National Research Foundation of Korea (NRF) - Korea government (MSIT) [NRF-2019R1A2C1009126]

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In this paper, the relationship between coordination complexes and electrical properties according to the bonding structure of boron and silicon was analyzed to optimize the p-n junction quality for high-efficiency n-type crystalline solar cells. The p(+)emitter layer was formed using boron tribromide (BBr3). The etch-back process was carried out with HF-HNO3-CH3COOH solution to vary the sheet resistance (R-sheet). The correlation between boron-silicon bonding in coordination complexes and electrical properties according to the R(sheet)was analyzed. Changes in the boron coordination complex and boron-oxygen (B-O) bonding in the p(+)diffused layer were measured through X-ray photoelectron spectroscopy (XPS). The correlation between electrical properties, such as minority carrier lifetime (tau(eff)), implied open-circuit voltage (iV(oc)) and saturation current density (J(0)), according to the change in element bonding, was analyzed. For the interstitial defect, the boron ratio was over 1.8 and the iV(oc)exceeded 660 mV. Additional gains of 670 and 680 mV were obtained for the passivation layer AlOx/SiN(x)stack and SiO2/SiN(x)stack, respectively. The blue response of the optimized p(+)was analyzed through spectral response measurements. The optimized solar cell parameters were incorporated into the TCAD tool, and the loss analysis was studied by varying the key parameters to improve the conversion efficiency over 23%.

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