Highly conductive coated wires for interconnection of solar cells with TECC-wire technology

IF 6.3 2区 材料科学 Q2 ENERGY & FUELS Solar Energy Materials and Solar Cells Pub Date : 2024-06-03 DOI:10.1016/j.solmat.2024.112966
Jonas Marten , Mona Schnaiter , Yonas Zemen , Lars Podlowski , Stefan Ricken , Norbert Willenbacher
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Abstract

TECC-Wire (thermoplastic and electrically conductive coated wire) represents a promising interconnection technology for temperature sensitive solar cells. TECC-Wire uses round copper wires (160–300 μm) coated with a thermoplastic polymer layer (10–20 μm), filled with electrically conductive particles. This study presents a new wire coating formulation based on a polyamide-type wire enamel (Voltatex® 8609 ECO, melting temperature 180 °C), filled with 12 vol% silver resulting in a conductivity of 480 S/cm. Single half-cut M6 heterojunction (SHJ) solar cells were contacted with the manufactured wires using a laboratory scale stringing machine. Peel tests were performed to characterize the adhesion of the wires to the cell surface, module performance was evaluated using electroluminescence (EL) imaging and current-voltage (IV) measurements, damp heat (DH) tests were used to evaluate the long-term stability of the modules. The wires adhere well to the cells with a peel force of more than 1.5 N/mm, and the highly conductive coating has proven to be robust when contacted with different pressure, which might be beneficial for a reliable high throughput solar module production. The obtained fill factor FF = 81.25 ± 0,12 % is similar to those achieved for solar modules connected via standard soldering techniques IEC standard DH tests confirmed that, the modules exhibiting a power loss of less than 5 % after 1000 h of storage at +85 °C and 85 % relative humidity. These results are very encouraging for further development of the technology towards a low temperature, solder-free, low cost and robust cell interconnection technology.

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利用 TECC 线技术实现太阳能电池互联的高导电性涂层导线
TECC-Wire(热塑性导电涂层导线)是一种很有前途的温度敏感型太阳能电池互连技术。TECC-Wire 使用圆形铜线(160-300 μm),表面涂有热塑性聚合物层(10-20 μm),其中填充有导电颗粒。本研究介绍了一种新的漆包线配方,该配方基于聚酰胺型漆包线漆(Voltatex® 8609 ECO,熔点 180 °C),其中填充了 12 Vol% 的银,从而使导电率达到 480 S/cm。使用实验室规模的穿线机将单个半切 M6 异质结 (SHJ) 太阳能电池与制造的漆包线接触。进行了剥离测试,以鉴定导线与电池表面的粘附性;使用电致发光(EL)成像和电流电压(IV)测量评估了模块性能;使用湿热(DH)测试评估了模块的长期稳定性。导线与电池的粘附性很好,剥离力超过 1.5 牛/毫米,高导电性涂层在不同压力下都很坚固,这可能有利于可靠的高产能太阳能模块的生产。所获得的填充因子 FF = 81.25 ± 0.12 % 与通过标准焊接技术连接的太阳能模块所获得的填充因子 FF = 81.25 ± 0.12 % 相似,IEC 标准 DH 测试证实,在 +85 °C 和 85 % 相对湿度条件下存放 1000 小时后,模块的功率损耗小于 5 %。这些结果对进一步开发低温、无焊料、低成本和坚固耐用的电池互联技术非常有帮助。
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来源期刊
Solar Energy Materials and Solar Cells
Solar Energy Materials and Solar Cells 工程技术-材料科学:综合
CiteScore
12.60
自引率
11.60%
发文量
513
审稿时长
47 days
期刊介绍: Solar Energy Materials & Solar Cells is intended as a vehicle for the dissemination of research results on materials science and technology related to photovoltaic, photothermal and photoelectrochemical solar energy conversion. Materials science is taken in the broadest possible sense and encompasses physics, chemistry, optics, materials fabrication and analysis for all types of materials.
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