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Functional Interface Passivation of Hybrid PEDOT:PSS Silicon Solar Cells via Silicon Hydrosilylation

机译:Hybrid Pedot的功能界面钝化:PSS硅太阳能电池通过硅氢化硅烷化

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Hybrid PEDOT:PSS-silicon heterojunction solar cells have the advantages of low temperature, low cost and solution process. However, as a low-quality native oxide layer can easily form on the surface of silicon substrates, the hybrid solar cells still suffer from charged carrier recombination at the defective interface, hence affecting the device characteristics. In this work, we employ a thermally induced silicon hydrosilylation technique to form a self-assembled monolayer(SAM) on the hydrogen-terminated silicon substrate, in order to prevent the oxidation and passivate the surface of silicon. The quality of this monolayer passivation is characterized by the contact angle, X-ray photoelectron spectroscopy (XPS) analyses. We have found that the SAM passivation can effectively reduce the contact resistance between silicon and the aluminum electrode, leading to an improved open-circuit voltage and fill-factor. However, as the silicon surface with the SAM passivation becomes hydrophobic, it is difficult to apply aqueous PEDOT:PSS solution onto silicon. Therefore, we further apply a low-damage oxygen plasma treatment to modify the terminal functional group of the monolayer to form a hydrophilic surface. The power conversion efficiency of the modified devices is between 10–12%. Although the PCE does not surpass the reference device due to possible chemical reactions between the PEDOT:PSS and SAM, the proposed low- damage oxygen-plasma treatment provide a viable solution for modifying the functional passivation of hybrid PEDOT:PSS silicon solar cells using SAMs.
机译:Hybrid Pedot:PSS-Silicon异质结太阳能电池具有低温,成本低,溶液过程的优点。然而,由于低质量的天然氧化物层可以容易地在硅基板的表面上形成,但混合太阳能电池仍然在缺陷界面处遭受充电载体重组,因此影响器件特性。在这项工作中,我们采用热诱导的硅氢化硅化技术,在氢封端的硅衬底上形成自组装的单层(SAM),以防止氧化并钝化硅表面。该单层钝化的质量的特征在于接触角,X射线光电子能谱(XPS)分析。我们发现SAM钝化可以有效地降低硅和铝电极之间的接触电阻,导致改善的开路电压和填充因子。然而,由于具有SAM钝化的硅表面变得疏水,因此难以将含水PEDOT:PSS溶液施加到硅上。因此,我们进一步应用低损伤的氧等离子体处理以改变单层的末端官能团以形成亲水表面。改进设备的电源转换效率在10-12%之间。尽管PCE由于PEDOT:PSS和SAM可能的化学反应而不超过参考装置,但所提出的低损伤的氧等离子体处理提供了一种可行的解决方案,用于改变混合脚筐的功能钝化:PSS硅太阳能电池使用SAMS 。

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