CIGS absorber layer by single-step non-vacuum intense pulsed light treatment of inkjet-printed film

S. Dhage, P. Chandrasekhar, S. Chandrasekhar, S. Joshi
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引用次数: 3

Abstract

Non-vacuum processes are of great interest for development of low-cost chalcopyrite-based photovoltaic technologies. Apart from the expensive vacuum-based routes that are widely adopted, another negative feature of the popularly employed methods is the need for selenization treatment, which significantly impacts the microstructure of the absorber layer and, in turn, also determines the performance of the device. A novel process for preparation of Cu(In0.7Ga0.3)Se2 (CIGS) films from an ink constituted of CIGS nanoparticles utilizing a convenient intense pulsed light (IPL) treatment is investigated in the present study. Initially, a thorough optimization of ink formulation variables was carried out in order to make the CIGS ink suitable for ink jet printing. The home-made CIGS ink, comprising CIGS nanoparticles with appropriate additives, was then successfully deposited with a print head having 256 nozzles on Mo coated soda lime glass substrate. Subsequently, IPL was used to treat the printed CIGS ink. Post IPL treatment, a CIGS film retaining the chalcopyrite structure even after melting and recrystallization, with no secondary phase formation, was realized. The phase constitution, thickness and morphology of prepared films were determined using X-ray diffraction (XRD), X-ray fluorescence spectroscopy (XRF) and field emission scanning electron microscopy (FESEM). The above non-vacuum, room temperature process not requiring any selenization treatment can have important implications in realization of cost-effective CIGS absorber layers.
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CIGS吸收层采用单步非真空强脉冲光处理喷墨印刷膜
非真空工艺对于低成本黄铜矿基光伏技术的发展具有重要意义。除了广泛采用的昂贵的真空方法外,普遍采用的方法的另一个缺点是需要硒化处理,这将显著影响吸收层的微观结构,反过来也决定了器件的性能。本文研究了一种利用强脉冲光(IPL)处理的CIGS纳米颗粒墨水制备Cu(In0.7Ga0.3)Se2 (CIGS)薄膜的新工艺。为了使CIGS油墨适合喷墨打印,首先对油墨配方变量进行了全面优化。自制的CIGS墨水,由CIGS纳米颗粒和适当的添加剂组成,然后成功地沉积在具有256个喷嘴的打印头上。随后,使用IPL对打印的CIGS油墨进行处理。在IPL处理后,CIGS薄膜即使在熔融和再结晶后仍保持黄铜矿结构,不形成二次相。采用x射线衍射(XRD)、x射线荧光光谱(XRF)和场发射扫描电镜(FESEM)对制备膜的相组成、厚度和形貌进行了测定。上述不需要任何硒化处理的非真空室温工艺对实现具有成本效益的CIGS吸收层具有重要意义。
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