Water-resistant perovskite photovoltaic material and preparation method therefor
A technology of perovskite materials and photovoltaic materials, applied in photovoltaic power generation, final product manufacturing, climate sustainability, etc., can solve problems such as affecting the life and stability of devices, increasing the difficulty and cost of device packaging, and decreasing battery performance. , to achieve the effect of enhancing waterproofness and stability, improving photoelectric conversion efficiency, and avoiding battery failure
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Embodiment 1
[0030] (1) Preparation of TiO 2 dense layer
[0031] Screen printing a layer of TiO on FTO glass 2 Thin film layer, after heating at 450°C for 30 minutes, a dense layer with a thickness of 50nm is obtained;
[0032] (2) Preparation of TiO 2 Mesoporous layer
[0033] Nano TiO 2 Make a slurry with ethanol at a weight ratio of 1:3, spin-coat onto the dense layer obtained in step (1), dry at 110°C, and then transfer to a muffle furnace for annealing at a temperature of 450°C for 50 minutes to obtain Nano-TiO attached to the dense layer 2 mesoporous layer;
[0034] (3) Preparation of perovskite photovoltaic materials
[0035] Spin-coat the nano-mica mesoporous layer obtained in step (3) with a concentration of 0.8mol / L lead iodide, lead chloride or lead bromide solution, and then 3 NH 3 After soaking in isopropanol for 15min, wash with isopropanol, and then heat at 90°C for 30min to generate CH 3 NH 3 PB 3 、CH 3 NH 3 PbCl 2 I or CH 3 NH 3 PbBr 2 I perovskite struc...
Embodiment 2
[0040] Step (1) is the same as above;
[0041] (2) Preparation of TiO 2 Mesoporous layer
[0042] Nano TiO 2 Make a slurry with ethanol at a weight ratio of 1:2, spin coat the dense layer obtained in step (1), dry at 100°C, and then transfer to a muffle furnace for annealing treatment at a temperature of 300°C for 30 to obtain Nano-TiO attached to the dense layer 2 mesoporous layer;
[0043] (3) Preparation of perovskite photovoltaic materials
[0044] Nano-TiO obtained in step (2) 2 The mesoporous layer is spin-coated with a concentration of 0.8mol / L lead iodide, lead chloride or lead bromide solution, and then in a concentration of 8mg / mlCH 3 NH 3 After soaking in isopropanol for 15 minutes, wash with isopropanol, and then heat at 90°C for 50 minutes to generate CH 3 NH 3 PB 3 、CH 3 NH 3 PbCl 2 I or CH 3 NH 3 PbBr 2 I perovskite structure material: then get nano-TiO with a thickness of 500nm 2 Perovskite photovoltaic materials;
[0045] (4) Preparation of wat...
Embodiment 3
[0049] Step (1) is the same as above;
[0050] (2) Preparation of TiO 2 Mesoporous layer
[0051] Nano TiO 2 Make a slurry with ethanol at a weight ratio of 1:5, spin coat the dense layer obtained in step (1), dry at 200°C, and then transfer to a muffle furnace for annealing at 600°C for 60 minutes to obtain Nano-TiO attached to the dense layer 2 mesoporous layer;
[0052] (3) Preparation of perovskite photovoltaic materials
[0053] Nano-TiO obtained in step (2) 2 The mesoporous layer is spin-coated with a concentration of 1.0mol / L lead iodide, lead chloride or lead bromide solution, and then in a concentration of 12mg / mlCH 3 NH 3 After soaking in isopropanol for 20min, wash with isopropanol, and then heat at 90°C for 50min to generate CH 3 NH 3 PB 3 、CH 3 NH 3 PbCl 2 I or CH 3 NH 3 PbBr 2 I perovskite structure material: then get nano-TiO with a thickness of 550nm 2 Perovskite photovoltaic materials;
[0054] (4) Preparation of water-resistant perovskite ph...
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