Study on the stable preparation and optimization treatment of DWS N-type single-crystal silicon pyramid arrays

IF 3.6 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
YuXin Zou, Xuan Liu, Mingjun Wang, Yating Song, Huan Liu, Shihao Hong, Fengshuo Xi
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引用次数: 0

Abstract

In the current work, the effect of the surface phase structure of silicon wafer on the copper assisted chemical etching (Cu-ACE) behavior was investigated by adopting N-type monocrystal silicon with different thickness as raw material. An inverted pyramid structure was prepared with the method of Cu-ACE, which exhibited a mild reaction temperature with the reflectance reaching as low as 6.34%. Furthermore, cetyltrimethylammonium bromide (CTAB) was employed as an additive to optimize the Cu-ACE process. The study revealed that CTAB molecules could adsorb Cu2+ near the silicon wafer surface in the HF/Cu(NO3)2/H2O2 solution, thereby promoting the deposition of copper particles and ensuring a uniform etching reaction. When 3 mg of CTAB was added to 100 mL of etching solution, the inverted pyramid structure showed larger dimensions and was more uniformly distributed, an excellent antireflection effect was achieved with the reflectance significantly reduced from 10.8% to 4.6%. This process could stably fabricate inverted pyramid structures, and is expected to advance the development of high-efficiency single-crystal solar cells in the future.

DWS N 型单晶硅金字塔阵列的稳定制备和优化处理研究
本研究以不同厚度的 N 型单晶硅为原料,研究了硅片表面相结构对铜辅助化学蚀刻(Cu-ACE)行为的影响。采用 Cu-ACE 方法制备的倒金字塔结构反应温度温和,反射率低至 6.34%。此外,还采用十六烷基三甲基溴化铵(CTAB)作为添加剂来优化 Cu-ACE 工艺。研究表明,在 HF/Cu(NO3)2/H2O2 溶液中,CTAB 分子能吸附硅晶片表面附近的 Cu2+,从而促进铜颗粒的沉积,确保蚀刻反应的均匀性。在 100 毫升蚀刻溶液中加入 3 毫克 CTAB 后,倒金字塔结构的尺寸更大,分布更均匀,达到了很好的减反射效果,反射率从 10.8% 显著降低到 4.6%。该工艺可以稳定地制备倒金字塔结构,有望推动未来高效单晶太阳能电池的发展。
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来源期刊
Materials for Renewable and Sustainable Energy
Materials for Renewable and Sustainable Energy MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.90
自引率
2.20%
发文量
8
审稿时长
13 weeks
期刊介绍: Energy is the single most valuable resource for human activity and the basis for all human progress. Materials play a key role in enabling technologies that can offer promising solutions to achieve renewable and sustainable energy pathways for the future. Materials for Renewable and Sustainable Energy has been established to be the world''s foremost interdisciplinary forum for publication of research on all aspects of the study of materials for the deployment of renewable and sustainable energy technologies. The journal covers experimental and theoretical aspects of materials and prototype devices for sustainable energy conversion, storage, and saving, together with materials needed for renewable fuel production. It publishes reviews, original research articles, rapid communications, and perspectives. All manuscripts are peer-reviewed for scientific quality. Topics include: 1. MATERIALS for renewable energy storage and conversion: Batteries, Supercapacitors, Fuel cells, Hydrogen storage, and Photovoltaics and solar cells. 2. MATERIALS for renewable and sustainable fuel production: Hydrogen production and fuel generation from renewables (catalysis), Solar-driven reactions to hydrogen and fuels from renewables (photocatalysis), Biofuels, and Carbon dioxide sequestration and conversion. 3. MATERIALS for energy saving: Thermoelectrics, Novel illumination sources for efficient lighting, and Energy saving in buildings. 4. MATERIALS modeling and theoretical aspects. 5. Advanced characterization techniques of MATERIALS Materials for Renewable and Sustainable Energy is committed to upholding the integrity of the scientific record. As a member of the Committee on Publication Ethics (COPE) the journal will follow the COPE guidelines on how to deal with potential acts of misconduct. Authors should refrain from misrepresenting research results which could damage the trust in the journal and ultimately the entire scientific endeavor. Maintaining integrity of the research and its presentation can be achieved by following the rules of good scientific practice as detailed here: https://www.springer.com/us/editorial-policies
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