硅异质结光伏电池的激光烧结银金属化

IF 6 3区 工程技术 Q2 ENERGY & FUELS
Solar RRL Pub Date : 2024-10-17 DOI:10.1002/solr.202400527
Jannatul Ferdous Mousumi, Yahya Bougdid, Gunjan Kulkarni, Tianyi Li, Ranganathan Kumar, Aravinda Kar, Kristopher Olan Davis
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引用次数: 0

摘要

本文报道了一种用于晶体硅异质结(SHJ)太阳能电池的新型金属化技术,该技术通过针点镀银纳米颗粒基油墨在SHJ衬底上印刷银手指,然后用连续波二氧化碳(CO2)激光烧结。在三种不同粘度的银油墨上研究了银油墨粘度对线条质量和线条阻力的影响。增加油墨粘度可产生更高的银接触高度,更大的纵横比和更低的线阻值。随着粘度的增加,银线高度从小于1微米增加到≈18.62±3.48 μm。光致发光成像表明,所获得的低电阻银金属接触不会对SHJ衬底造成钝化损伤。这是因为CO2激光器发出的光波长(即10.6 μm)会导致Ag的光吸收,但该光对透明导电氧化膜、非晶硅膜和晶体硅衬底是有效透明的。激光烧结银触点的体电阻率值低至6.5 μΩ cm,并使用粘度最高的银油墨进行印刷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Laser-Sintered Silver Metallization for Silicon Heterojunction Photovoltaic Cells

Laser-Sintered Silver Metallization for Silicon Heterojunction Photovoltaic Cells

Herein, a novel metallization technique is reported for crystalline silicon heterojunction (SHJ) solar cells in which silver (Ag) fingers are printed on the SHJ substrates by dispensing Ag nanoparticle-based inks through a needle and then sintered with a continuous-wave carbon dioxide (CO2) laser. The impact of the Ag ink viscosity on the line quality and the line resistance is investigated on three Ag inks with different viscosities. Increasing ink viscosity yields higher Ag contact heights, larger aspect ratios, and lower line resistance values. The Ag line height increases from less than a micrometer to ≈18.62 ± 3.48 μm with the increasing viscosity. Photoluminescence imaging shows that the low-resistance Ag metal contacts obtained do not result in any passivation damage of the SHJ substrate. This is because the wavelength of light emitted from the CO2 laser (i.e., 10.6 μm) leads to optical absorption in the Ag, but this light is effectively transparent to the transparent conductive oxide film, amorphous silicon films, and crystalline silicon substrate. Bulk resistivity values as low as 6.5 μΩ cm are obtained for the laser-sintered Ag contact and printed using the Ag ink with the highest viscosity in this work.

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来源期刊
Solar RRL
Solar RRL Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
12.10
自引率
6.30%
发文量
460
期刊介绍: Solar RRL, formerly known as Rapid Research Letters, has evolved to embrace a broader and more encompassing format. We publish Research Articles and Reviews covering all facets of solar energy conversion. This includes, but is not limited to, photovoltaics and solar cells (both established and emerging systems), as well as the development, characterization, and optimization of materials and devices. Additionally, we cover topics such as photovoltaic modules and systems, their installation and deployment, photocatalysis, solar fuels, photothermal and photoelectrochemical solar energy conversion, energy distribution, grid issues, and other relevant aspects. Join us in exploring the latest advancements in solar energy conversion research.
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