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首页> 外文期刊>Journal of the Korean Physical Society >Investigation of Optimum Conditions for Synthesis of Cu(In,Ga)Se-2 Nanoparticles by Refluxing
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Investigation of Optimum Conditions for Synthesis of Cu(In,Ga)Se-2 Nanoparticles by Refluxing

机译:回流回流对Cu(In,Ga)Se-2纳米粒子合成最佳条件的研究

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Cu(In,Ga)Se-2 (CIGSe) has been proven to be a better candidate as a light absorber layer in thin-film solar cells. However, most processes require high vacuum and high temperature during deposition, which results in significant loss of materials and is not applicable to a flexible substrate. Solution processes often involve low processing temperature and cheap precursor, can be used with flexible substrates, and offer the possibility of roll-to-roll manufacturing, potentially reducing manufacturing costs for the module. Here, we have experimentally investigated the optimum synthesis conditions for CIGSe nanoparticles fabricated by using a facile and a non-vacuum reflux method for low-temperature solution processes. By employing various reflux conditions by changing the temperature of heating mantle, single-phase CIGSe nanoparticles were synthesized at 200 degrees C. On the other hand, synthesized products with an impure multi-phase were formed at heating mantle temperatures lower than 200 degrees C. XRD measurements confirmed that the Ga content of the CIGSe nanoparticles increased with increasing heating mantle temperature. In addition, the average diameter of the CIGSe nanoparticles increased with increasing reaction time from 5 min to 30 min at a fixed heating mantle temperature of a 200 degrees C. The optical band gap is calculated by using ultraviolet-visible (UV-Vis) absorption spectra, decreased from 1.69 eV to 1.29 eV with increasing reaction time due to the increased CIGSe nanoparticles size. From our results, we can conclude that the characteristics of the CIGSe nanoparticles can be effectively controlled by using simple growth conditions, thereby providing many advantages for the fabrication of absorber layers for use in CIGSe solar cells.
机译:已被证明在薄膜太阳能电池中作为光吸收层的更好的候选者被证明是一种更好的候选者。然而,大多数过程在沉积期间需要高真空和高温,这导致材料的显着损失并且不适用于柔性基板。溶液过程通常涉及低加工温度和廉价前体,可与柔性基板一起使用,并提供卷到卷制造的可能性,可能降低模块的制造成本。在这里,我们已经通过使用适用于低温溶液方法来实验研究了通过使用容器和非真空回流方法制造的缩醛纳米颗粒的最佳合成条件。通过通过改变加热套的温度来采用各种回流条件,在200℃下合成单相缩合纳米颗粒。另一方面,在加热搭式温度下形成不太多相的合成产物。 XRD测量证实,CIGSE纳米粒子的GA含量随着加热罩温度的增加而增加。另外,通过在200℃的固定加热套管温度下将反应时间从5分钟至30分钟的反应时间的平均直径增加,通过使用紫外线可见(UV-Vis)吸收来计算光带间隙,随着5分钟至30分钟的反应时间增加而增加。光谱从1.69eV降低至1.29eV,随着CIGSE纳米颗粒的增加而增加反应时间。从我们的结果,我们可以得出结论,通过使用简单的生长条件,可以有效地控制释放纳米颗粒的特性,从而提供了用于制造吸收层以用于释放太阳能电池的吸收层的许多优点。

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