径向结晶体硅太阳能电池,使用垂直排列的微线,效率超过20%(会议报告)

Kwanyong Seo, I. Hwang
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引用次数: 0

摘要

增强光吸收是发展高效晶体硅(c-Si)太阳能电池的关键研究领域之一。表面结构不仅可以减少表面反射,而且可以增加光程长度,是一种在宽带波长范围内增加光吸收的有效方法。在表面结构中,垂直排列的硅微线(MWs)由于具有出色的宽带抗反射和径向结效应,可以实现高效的电荷收集,因此被广泛研究用于开发高效的c-Si太阳能电池。入射光沿长MW轴方向被吸收,而光致载流子则沿短径向方向被收集。为了实现高效的径向结c-Si太阳能电池,我们开发了MWs的制造工艺、高导电性和透光率的顶电极、形状控制的MWs和高纯度掺杂工艺等新技术。通过优化的金属辅助化学蚀刻(MACE)和深度反应离子蚀刻(DRIE)工艺,成功制备了高纵横比MWs(> 10:1)。为了实现毫瓦径向结太阳能电池的高效率,我们开发了高导电性和透明的顶部电极,以取代传统的遮光损失较大的母线指电极。我们设计了一种新型的微电网顶部电极,具有优异的透光率(超过97%)和低片电阻(小于30 Ω/□)。在顶表面添加微电网电极后,MWs太阳能电池的填充系数达到81.2%,效率提高了16.5%。虽然我们的MWs径向结太阳能电池在微电网电极的作用下效率得到了提高,但为了使效率最大化,还需要增加光吸收能力。为了有效降低径向结太阳能电池的平顶反射和提高其光吸收性能,采用了一种简单的湿蚀刻工艺,采用锥形的mw结构。当将带有MWs的c-Si晶圆浸入硅蚀刻剂(RSE-100, transene)中时,由于不同的化学扩散路径长度导致形成锥形的MWs,因此具有较短扩散路径的MWs顶部比底部蚀刻得更快。由于锥形mw的直径从顶部到底部逐渐增大,因此锥形mw可以作为缓冲层来补偿空气(1)和硅衬底(4)的折射率不匹配。因此,在波长为550 nm时,观察到锥形mw的表面反射率小于2%。由于增强的光吸收特性,锥形MW径向结太阳能电池的效率提高到18.9%。作为优化MWs太阳能电池器件结构的最后一步,我们开发了使用酸性掺杂源的高纯度掺杂工艺,该工艺提高了少数载流子寿命(从79.29µs提高到272.24µs)。在此基础上,我们采用了微电网电极、锥形mw和高纯度掺杂工艺等技术,实现了高效率(20.2%)的径向结太阳能电池。目前,我们的目标是开发一种理想的钝化层,使径向结太阳能电池的效率达到25%以上。因此,我们相信采用所建议的技术的MW结构将成为高效径向结太阳能电池的基础技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Radial junction crystalline silicon solar cells with an efficiency of over 20% using vertically aligned microwires (Conference Presentation)
Light-absorption enhancement is one of the key research areas related to the development of high-efficiency crystalline silicon (c-Si) solar cells. Surface structuring which can reduce not only the surface reflection but also increase the optical path length is an efficient way to increase light absorption in a broadband wavelength range. Among the surface structures, vertically aligned silicon microwires (MWs) have been extensively investigated as a means for developing highly efficient c-Si solar cells because of the outstanding broadband antireflection and radial junction effect which enables efficient charge collection. The incident light is absorbed along the long MW axis, while photo-induced carriers can be collected along the short radial direction. To realize the highly efficient radial junction c-Si solar cells, we have developed novel technologies such as fabrication process of MWs, high conductive and transmittance top electrode, shape-controlled MWs, and high purity doping process. The high-aspect-ratio MWs (> 10:1) were successfully fabricated through both optimized metal-assisted chemical etching (MACE) and deep reactive ion etching (DRIE) processes. To achieve the high efficiency of MW radial junction solar cells, we developed the high conductive and transparent top electrode to replace the conventional bus-finger electrode which has a significant shading loss. We devised a novel micro-grid top electrode which shows superior transmittance (over 97%) and low sheet resistance (less than 30 Ω/□). By applying the micro-grid electrode on the top surface, the MWs solar cells showed outstanding fill factor (81.2%) and improved efficiency (16.5%). Although our MWs radial junction solar cell showed improved efficiency with the micro-grid electrode, it needs to increase the light absorption capability to maximize the efficiency. As an efficient way to decrease the flat-top-surface reflection of the MWs and increase the light absorption property of the radial junction solar cells, a tapered-MW structure was employed using a simple wet-etching process. When a c-Si wafer with MWs is dipped in a silicon etchant (RSE-100, transene), the top part of the MWs that has a shorter diffusion path compared to the bottom part is etched more quickly because of the different chemical diffusion path lengths leading to the formation of tapered MWs. Since the diameter of the tapered MWs gradually increased from the top to the bottom, the tapered MWs can act as a buffer layer to compensate for the mismatch between the refractive indexes of air (1) and the silicon substrate (4). Thus, the surface reflection of the tapered MWs was observed to be less than 2% at a wavelength of 550 nm. The tapered MW based radial junction solar cells exhibit improved efficiency up to 18.9% thanks to the enhanced light absorption property. As the last step for optimizing the device structure of the MWs solar cells, we developed high purity doping process using acid dopant sources that showed improved minority carrier lifetime (from 79.29 µs to 272.24 µs). Accordingly, we achieved high efficiency (20.2%) MWs radial junction solar cell by applying all of the developed our technologies such as the micro-grid electrode, tapered MWs, and high purity doping process. At present, we are aiming at developing an ideal passivation layer to achieve the more than 25% efficiency of the radial junction solar cells. Therefore, we believe the MW structures with the suggested technologies become a foundational technology for the highly efficient radial junction solar cells.
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