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Electrical properties of dye-sensitized solar module with integrated parallel connections

机译:具有集成并联连接的染料敏化太阳能模块的电性能

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Despite the rapid development of dye-sensitized solar cell since its early breakthrough by Graetzel in 1991, further development on the design and fabrication technique still constitutes a major challenge for this type of solar cell to reach the mass production and marketing level. Generally, the upscaling of dye-sensitized solar cell for daily utilizations necessitates the interconnection of multiple cells to form modules. In this regard, the use of screen-printing method could provide a major benefit to fabricate such structure as it is feasible for industrial and large scale manufacturing process. This contribution describes the fabrication of a 100 × 100 mm2 dyesensitized solar module using semi-automatic screen-printing technique. The fabricated modules comprised of 7 individual cells made from titanium dioxide (TiO2) nanocrystalline films, each with an active area size of 10 × 70 mm2, giving an active area ratio of 70%. The cells were connected to the neighboring cells in a parallel configuration. To simulate the potential of the fabricated modules for indoor applications, the current-voltage characteristics of the module were measured under an ambient lighting with an intensity of 30 mW/cm2. The parallel interconnected dye-sensitized solar module produced an open circuit voltage (VOC) of 0.71 V with a short circuit current (ISC) of 21.73 mA and maximum power output (Pmax) of 4.19 mW. Overall, the fabricated module achieved a power conversion efficiency of 1.99%. A secondary measurement under simulated sun with an intensity of 50 mW/cm2 (0.5 Sun) was also carried out to compare the performance of the modules under different environment. Under the later condition, the VOC, ISC, Pmax, and efficiency obtained were 0.77 V, 27.64 mA, 5.47 mW, and 0.15%, respectively. Our results indicated that the dye-sensitized solar module with integrated parallel connection has a prominent advantage to be applied as an energy source for applications that requires high current input under low-light condition.
机译:尽管自从1991年Graetzel早年突破染料敏化太阳能电池以来,其发展迅速,但是在设计和制造技术上的进一步发展仍然是使这类太阳能电池达到大规模生产和销售水平的主要挑战。通常,用于日常用途的染料敏化太阳能电池的升级需要将多个电池互连以形成模块。在这方面,丝网印刷方法的使用可以为制造这种结构提供主要的好处,因为它对于工业和大规模制造过程是可行的。该贡献描述了使用半自动丝网印刷技术制造100×100 mm 2 染料敏化太阳能电池组件。制成的模块由7个由二氧化钛(TiO 2 )纳米晶体薄膜制成的单元组成,每个单元的有效面积为10×70 mm 2 ,从而提供了一个有效面积比例为70%。单元以并行配置连接到相邻单元。为了模拟制造的模块在室内应用的潜力,在强度为30 mW / cm 2 的环境照明下测量了模块的电流-电压特性。并联互连的染料敏化太阳能电池模块产生的开路电压(V OC )为0.71 V,短路电流(I SC )为21.73 mA,最大功率输出(P max )为4.19 mW。总体而言,所制造的模块实现了1.99%的功率转换效率。还进行了模拟太阳光强度为50 mW / cm 2 (0.5太阳)的二次测量,以比较模块在不同环境下的性能。在后面的条件下,V OC ,I SC ,P max 和效率分别为0.77 V,27.64 mA,5.47 mW和分别为0.15%。我们的结果表明,具有集成并联连接的染料敏化太阳能模块具有显着的优势,可以用作在弱光条件下需要高电流输入的应用中的能源。

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