光子学报, 2017, 46 (1): 0116002, 网络出版: 2017-02-09   

银铜双原子MACE法可控制备倒金字塔多晶黑硅的结构与性能

Structures and Properties of Black Multicrystalline Silicon with a Structure of Invert Pyramid Prepared Controllably by Ag and Cu Dually Assisted Chemical Etching Method
作者单位
1 南京航空航天大学 材料科学与技术学院 江苏省能量转换材料与技术重点实验室, 南京 210016
2 江苏辉伦太阳能科技有限公司, 南京 210061
摘要
采用一步银铜双原子金属辅助化学腐蚀法, 室温下在多晶硅表面制备纳米陷光结构, 再利用纳米结构修正溶液在温度为50℃时对硅片进行各向异性重构, 可控制备出不同尺寸的倒金字塔陷光结构.用分光光度计测量了多晶硅表面的反射率, 用扫描电镜观察了多晶硅表面形貌, 用少子寿命测试仪测量了多晶硅钝化后的少子寿命.结果表明: 影响倒金字塔结构尺寸的主要影响因素是制备态黑硅纳米结构的深度, 当深度越深, 最终形成的结构尺寸也越大; 纳米结构修正溶液重构时间越长, 所形成的倒金字塔结构尺寸越大, 反射率也变大; 经原子层沉积钝化后的倒金字塔结构中少子寿命随其尺寸的增大而增加; 当倒金字塔边长为600 nm时综合效果最佳, 反射率为9.87%, 少子寿命为37.82 μs.
Abstract
Using by the method of one step Ag and Cu dual elements based Metal Assisted Chemical Etching(MACE), a nano-light trapping structure was prepared at a room temperature on the surface of the multicrystalline silicon. Then, the silicon wafers were made an anisotropic refactoring using by a Nano Structure Rebuilding (NSR) solution at a temperature of 50℃, so that the invert pyramid light trapping structures with different sizes were prepared. The reflectance and surface morphologies of multicrystalline silicon, and the minority carrier lifetime of the passivated multicrystalline silicon were measured by spectrophotometer, scanning electron microscopy and Sinton WCT-120 tool respectively. The results show that, the main factor to affect the final size of invert pyramid structure is the depth of the as-etched nanostructure. The deeper the depth is, the larger the final size of invert pyramid structure becomes. With the increase of NSR refactoring time, the size of the invert pyramid structure goes larger and the reflectance becomes higher too. While the minority carrier lifetime increases with the increasing of the size of invert pyramids after atomic layer deposition passivating, one should make a balance between anti-reflection result and passivation effect. An invert pyramid with an edge length of 600 nm is found to be an optimal size, corresponding a reflectance of 9.87% and a minority carrier lifetime of 37.82 μs.
参考文献

[1] 蒋晔, 沈鸿烈, 岳之浩, 等. 黑硅与黑硅太阳电池的研究进展[J]. 人工晶体学报, 2012(S1): 254-259.

    JIANG Ye, SHEN Hong-lie, YUE Zhi-hao, et al. Research progress of the back silicon and black silicon solar cells[J]. Journal of Synthetic Crystals, 2012, (S1): 254-259.

[2] HER Tsing-hua, FINLAY R J, WU C, et al. Microstructuring of silicon with femtosecond laser pulses[J]. Applied Physics Letters, 1998, 73(12): 1673-1675.

[3] PENG Kui-qing, LU A, ZHANG R, et al. Motility of metal nanoparticles in silicon and induced anisotropic silicon etching[J]. Advanced Functional Materials, 2008, 18(19): 3026-3035.

[4] 虞栋, 王申, 郦莉, 等. 铜辅助单步化学刻蚀多晶硅[J]. 微纳电子技术, 2014, 51(004): 249-256.

    YU Dong, WANG Shen, LI li, et al. One-step Cu-assisted chemical etching on polycrystalline silicon[J]. Micronanoelectronic Technology, 2014, 51(004): 249-256.

[5] 林龙, 邓振波, 刘贤德.银纳米颗粒对聚合物太阳能电池性能的提高[J].发光学报, 2015,36(4):449-453.

    LIN Long, DENG Zhen-bo, LIU Xian-de. Improvement of Ag NPs to the performance of polymer solar cells[J]. Chinese Journal of Luminescence, 2015, 36(4): 449-453.

[6] 陈云龙, 郑加金, 蒋宇宠.镀膜法改善有机薄膜太阳能电池光学性能[J].发光学报, 2014,35(6):710-716.

    CHEN Yun-long, ZHENG Jian-jin, JIANG Yu-hong. Optical performance improving of organic film solar cell by multiple surface coating[J]. Chinese Journal of Luminescence, 2014, 35(6): 710-716.

[7] 白昱, 郭晓阳, 刘星元.利用蛾眼结构提高有机太阳能电池光吸收效率的理化研究[J].发光学报,2015,36(5):539-544.

    BAI Yu, GUO Xiao-yang, LIU Xing-yuan. Theoretical study on the improvement of light absorption efficiency of organic solar cells by moth eye structure[J]. Chinese Journal of Luminescence, 2015, 36(5): 539-544.

[8] OH J, BRANZ H M, YUAN H C. An 18.2%-efficient black-silicon solar cell achieved through control of carrier recombination in nanostructures[J]. Nature Nanotechnology, 2012, 7(11): 743-748.

[9] CHEN H Y, LU H L, REN Q H, et al. Enhanced photovoltaic performance of inverted pyramid-based nanostructured black-silicon solar cells passivated by an atomic-layer-deposited Al2O3 layer[J]. Nanoscale, 2015, 7(37): 15142-15148.

[10] YE Xiao-yan, ZOU S, CHEN K, et al. 18.45% efficient multi crystalline silicon solar cells with novel nanoscale pseudo pyramid texture[J]. Advanced Functional Materials, 2014, 24(42): 6708-6716.

[11] 张力典, 沈鸿烈, 岳之浩. 多晶硅减反射复合结构的制备与性能[J]. 光学学报, 2013, 33(6): 341-346.

    ZHANG Li-dian, SHEN Hong-lie, YUE Zhi-hao. Preparation and property of antireflective complex structures on multicrystalline silicon surface[J]. Acta Optica Sinica, 2013, 33(6): 341-346.

[12] KUMAGAI A. Texturization using metal catalyst wet chemical etching for multicrystalline diamond wire sawn wafer[J]. Solar Energy Materials and Solar Cells, 2015, 133: 216-222.

[13] CHUNG Chun-hui, LE V N. Depth of cut per abrasive in fixed diamond wire sawing[J]. The International Journal of Advanced Manufacturing Technology, 2015, 80(5-8): 1337-1346.

[14] LI Ping, WEI Y, ZHAO Z, et al. Highly efficient industrial large-area black silicon solar cells achieved by surface nanostructured modification[J]. Applied Surface Science, 2015, 357: 1830-1835.

[15] BRANZ H M, YOST V E, WARD S, et al. Nanostructured black silicon and the optical reflectance of graded-density surfaces[J]. Applied Physics Letters, 2009, 94(23): 231121.

[16] WU Yi, GAO F, WU H, et al. The effects of Ag particle morphology on the antireflective properties of silicon textured using Ag-assisted chemical etching[J]. Journal of Alloys and Compounds, 2016, 670: 156-160.

[17] JIA Guo-bin, WESTPHALEN J, DREXLER J, et al. Ordered silicon nanowire arrays prepared by an improved nanospheres self-assembly in combination with Ag-assisted wet chemical etching[J]. Photonics and Nanostructures-Fundamentals and Applications, 2016, 19: 64-70.

[18] TOOR F, OH J, BRANZ H M. Efficient nanostructured ‘black’ silicon solar cell by copper catalyzed metal assisted etching[J]. Progress in Photovoltaics: Research and Applications, 2015, 23(10): 1375-1380.

郑超凡, 沈鸿烈, 蒲天, 蒋晔, 李玉芳, 唐群涛, 杨楠楠, 金磊. 银铜双原子MACE法可控制备倒金字塔多晶黑硅的结构与性能[J]. 光子学报, 2017, 46(1): 0116002. ZHENG Chao-fan, SHEN Hong-lie, PU Tian, JIANG Ye, LI Yu-fang, TANG Qun-tao, YANG Nan-nan, JIN Lei. Structures and Properties of Black Multicrystalline Silicon with a Structure of Invert Pyramid Prepared Controllably by Ag and Cu Dually Assisted Chemical Etching Method[J]. ACTA PHOTONICA SINICA, 2017, 46(1): 0116002.

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