论文标题

基于下一代量子点的多峰光伏

Next Generation Quantum Dots Based Multijunction Photovoltaics

论文作者

Prajapati, Ankul, H, Bade M

论文摘要

光伏细胞(PVC),作为下一代的能源提供商,也是可再生能源的最大来源。自从过去十年以来,提高效率并降低PVC的成本一直是科学家积极研究的主题。纳米级材料科学和制造过程领域的有希望的进步发挥了重要作用。尽管如此,目前在光伏技术之前仍有许多挑战。然而,基于P-N型同型半导体具有不同有机和无机材料的光伏电池,因此通常遭受性能较差。根据可用文献,具有巨大特性的胶体量子点,例如各种光吸收,易于充电分离和运输。为了利用到达地球并产生有效能量的太阳能光谱的最大部分,我们在这里介绍了基于量子点的太阳能电池(QDSC)的完整细胞体系结构和数值研究,并采用异质结构多期方法。分析了在不同异质界面处的连续离子层吸附。我们主要专注于改善不同材料和结构方法实现的QDSC的电气和光学特性。在这里,我们报告了针对QDSC界面的频段对齐工程策略的异质结构II型,可显着增强效率描述符。在中间带太阳能电池(IBSC)的背景下,我们研究了QD的光学性质以及对多层PVC的应变效应,并总结了QDS生长的应变效应以及导带(CB)和价带(VB)的局部能带弯曲。

Photovoltaic cells (PVc), as an energy provider to the next generation and the biggest source of renewable energy. Since the last decade improving efficiency and reducing the cost of PVc has been a subject of active research among scientists. Promising progress in the field of material science and manufacturing process at Nano-level played a big role. Still, at present there are many challenges before photovoltaics for efficient and economic energy. However, Photovoltaics cell based on p-n type homojunction semiconductors with different organic and inorganic materials reported thus for generally suffer from poor performance. According to the available literature, colloidal quantum dots having immense properties like a wide range of light absorption, easily charge separation and transport. To utilize the maximum part of the spectrum of solar energy reaching to the earth and making effective energy production, here we introduce the complete cell architecture and numerical investigation on quantum dot based solar cells (QDSCs) with a heterostructure multijunction approach. Successive ionic layer adsorption at different heterogeneous interfaces were analyzed. We majorly focused on improving the electrical and optical properties of the QDSCs achieved by different materials and structural approaches. Here, we report a heterostructure II-Type of band alignment engineering strategy for QDSCs interfaces that significantly enhances the efficiency descriptors. In the context of intermediate band solar cell (IBSC), we investigated optical properties of QDs and strain effects on multilayer PVc and we summarize the strain effect in QDs growth and local energy band bending of conduction band (CB) and valence band (VB).

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源