Fundamental Study on the Fabrication of Inverted Planar Perovskite Solar Cells Using Two-Step Sequential Substrate Vibration-Assisted Spray Coating (2S-SVASC)

被引:0
作者
Fatemeh Zabihi
Mohammad-Reza Ahmadian-Yazdi
Morteza Eslamian
机构
[1] University of Michigan-Shanghai Jiao Tong University Joint Institute,
来源
Nanoscale Research Letters | 2016年 / 11卷
关键词
Planar perovskite solar cells; Thin films; Spray coating; Ultrasonic substrate vibration; Substrate vibration-assisted spray coating (SVASC);
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摘要
In this paper, a scalable and fast process is developed and employed for the fabrication of the perovskite light harvesting layer in inverted planar heterojunction solar cell (FTO/PEDOT:PSS/CH3NH3PbI3−xClx/PCBM/Al). Perovskite precursor solutions are sprayed onto an ultrasonically vibrating substrate in two sequential steps via a process herein termed as the two-step sequential substrate vibration-assisted spray coating (2S-SVASC). The gentle imposed ultrasonic vibration on the substrate promotes droplet spreading and coalescence, surface wetting, evaporation, mixing of reagents, and uniform growth of perovskite nanocrystals. The role of the substrate temperature, substrate vibration intensity, and the time interval between the two sequential sprays are studied on the roughness, coverage, and crystalline structure of perovskite thin films. We demonstrate that a combination of a long time interval between spraying of precursor solutions (15 min), a high substrate temperature (120 °C), and a mild substrate vibration power (5 W) results in a favorable morphology and surface quality. The characteristics and performance of prepared perovskite thin films made via the 2S-SVASC technique are compared with those of the co-sprayed perovskite thin films. The maximum power conversion efficiency of 5.08 % on a 0.3-cm2 active area is obtained for the device made via the scalable 2S-SVASC technique.
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[1]  
Heo JH(2013)Efficient inorganic–organic hybrid heterojunction solar cells containing perovskite compound and polymeric hole conductors Nature Photonics 7 486-491
[2]  
Hyuk S(2014)Nickel-cathoded perovskite solar cells J. Phys. Chem. C 118 25878-25883
[3]  
Noh JH(2015)Highly efficient planar perovskite solar cells through band alignment engineering Energy Environ. Sci. 8 2928-2934
[4]  
Mandal TN(2015)17.6% stabilized efficiency in low-temperature processed planar perovskite solar cells Energy Environ. Sci 8 2365-2370
[5]  
Lim CS(2014)Morphological control for high performance, solution- processed planar heterojunction perovskite solar cells Adv. Funct. Mater. 24 151-157
[6]  
Chang JA(2014)Atomistic origins of high-performance in hybrid halide perovskite solar cells Nano Lett. 14 2584-2590
[7]  
Qinglong J(2015)Trend of perovskite solar cells: dig deeper to build higher J. Phys. Chem. Lett. 6 2315-2317
[8]  
Xia S(2013)Depleted hole conductor-free lead halide iodide heterojunction solar cells Energy Environ. Sci. 6 3249-3253
[9]  
Bing S(2009)Organomatal halide perovskite as visible-light synthesizer for photovoltaic cells J Am Chem Soc 131 6050-6051
[10]  
Xinjian F(2015)Effect of different lead precursors on perovskite solar cell performance and stability J. Mater. Chem. A. 3 9194-9200