Experimental Investigation of Effect of Flake Silver Powder Content on Sintering Structure and Properties of Front Silver Paste of Silicon Solar Cell
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Materials
2.2. Preparation and Sintering of Front Silver Paste for Solar Cells
2.3. Testing and Characterization
3. Results and Discussion
3.1. Sintering Changes of Different Silver Powders
3.2. Effect of Flake Silver Powder Content in Silver Paste on the Properties of Sintered Silver Film
3.2.1. Effect of Flake Silver Powder Content on Sheet Resistance
3.2.2. Effect of Flake Silver Powder Content on the Adhesion
3.2.3. Effect of Flake Silver Powder Content on the Specific Contact Resistivity
3.2.4. Micromorphology of the Contact Section between the Silicon Substrate and Silver Film
4. Conclusions
- (1)
- The viscosity of the glass melt decreased and the fluidity increased at a peak sintering temperature of 800 °C, allowing it to quickly infiltrate the silver particles and drive the rearrangement of the silver particles to establish a dense conductive network, thus improving the silver film conductivity.
- (2)
- When the sintering peak temperature of the silver paste was 800 °C, the flake silver particles were partially transformed into spherical silver particles and shrank in size. A denser layered conductive network was easily formed around the flake silver particles. However, due to the size shrinkage of the flake silver particles, a large number of holes were left between the layers, which affected the conductivity. When the peak sintering temperature of silver paste reached 900 °C, the silver particles that were in contact with each other melted, resulting in a large number of holes, which affected the silver film’s conductivity.
- (3)
- Due to the size shrinkage of the flake silver powder during sintering being greater than that of the spherical silver powder, the addition of flake silver powder increased the porosity between the silver electrode sheets and increased the sheet resistance of silver electrodes. However, when the flake silver powder content was low, the flake silver powder increased the contact area at the silver–silicon interface, and the high sintering activity of the flake silver powder was found to be beneficial to the formation of higher bonding strengths at the silver–silicon interface, which increased the adhesion and reduced the contact resistance. Additionally, because the contact resistance in the series resistance of the battery was much higher than the sheet resistance, the addition of a small amount of flake silver powder was found to be beneficial to the sintering performance of the silver paste and the performance improvement of solar cells. It was found that the comprehensive performance of the silver film was the best when the flake silver powder content was 30%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Li, W.; Yu, C.; Wang, Y.; Yao, Y.; Yu, X.; Zuo, C.; Yu, Y. Experimental Investigation of Effect of Flake Silver Powder Content on Sintering Structure and Properties of Front Silver Paste of Silicon Solar Cell. Materials 2022, 15, 7142. https://doi.org/10.3390/ma15207142
Li W, Yu C, Wang Y, Yao Y, Yu X, Zuo C, Yu Y. Experimental Investigation of Effect of Flake Silver Powder Content on Sintering Structure and Properties of Front Silver Paste of Silicon Solar Cell. Materials. 2022; 15(20):7142. https://doi.org/10.3390/ma15207142
Chicago/Turabian StyleLi, Wei, Chunxiu Yu, Yunkai Wang, Yuan Yao, Xianglei Yu, Chuan Zuo, and Yang Yu. 2022. "Experimental Investigation of Effect of Flake Silver Powder Content on Sintering Structure and Properties of Front Silver Paste of Silicon Solar Cell" Materials 15, no. 20: 7142. https://doi.org/10.3390/ma15207142
APA StyleLi, W., Yu, C., Wang, Y., Yao, Y., Yu, X., Zuo, C., & Yu, Y. (2022). Experimental Investigation of Effect of Flake Silver Powder Content on Sintering Structure and Properties of Front Silver Paste of Silicon Solar Cell. Materials, 15(20), 7142. https://doi.org/10.3390/ma15207142