光系统 I 提高了过氧化物有机串联太阳能电池的效率

IF 5.3 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
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引用次数: 0

摘要

为了更好地吸收太阳光光谱并减少光损耗,人们引入了串联太阳能电池(TSC)。其中,过氧化物有机串联太阳能电池(P-OTC)因其吸收光谱的互补性而在过去十年中成为一个突出的课题。此外,在制造串联太阳能电池时加入多种色素蛋白复合物的做法也越来越普遍。天然含叶绿素的光系统因其天然的太阳调谐吸收光谱而备受关注。光系统 I 蛋白(PSI)是含氧光合作用中最强大的组成部分,含有 100 多个叶绿素分子/复合物,在 430 和 665 纳米波长处有两个尖锐的吸收峰。由于 P-OTSC 在红色波长区域的消光系数通常较低,因此 PSI 提供了第二个互补的活性层。在这项研究中,利用分离的植物 PSI 复合物改善了吸收光谱,从而提高了 P-OTSCs 的性能。电路电流密度(Jsc)从 14.23 mA/cm² 增加到 14.95 mA/cm²,P-OTSCs 的功率转换效率(PCE)从 19.32% 增加到 20.24%。我们还观察到,外部量子效率(EQE)在长波长区域有明显提高,这反映了 PSI 对光的吸收。这项研究首次报告了将 PSI 集成到包晶有机串联太阳能电池中的情况,并提出了新的设计思路,以进一步提高效率并利用天然、地球上丰富的色素蛋白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Photosystem I enhanced perovskite–Organic tandem solar cell efficiency

Photosystem I enhanced perovskite–Organic tandem solar cell efficiency

Tandem solar cells (TSC) have been introduced to better absorb the spectrum of sunlight and reduce optical loss. Among these, perovskite–organic tandem solar cells (P-OTSC) have emerged as a prominent topic over the last decade due to their complementary absorption spectrum. Additionally, incorporating diverse pigmented protein complexes in TSC fabrication is becoming more common. Natural chlorophyll-containing photosystems have garnered significant attention for their naturally solar-tuned absorption spectra. Photosystem I protein (PSI), is the most robust component of oxygenic photosynthesis and contains over 100 Chl a molecules/complex with two sharp absorbance peaks at 430 and 665 nm. PSI offers a second and complementary active layer because P-OTSCs often have a low extinction coefficient in the red wavelength region. In this research, the performance of P-OTSCs was enhanced by improving the absorption spectrum by utilizing an isolated plant PSI complex. The circuit current density (Jsc) increased from 14.23 mA/cm² to 14.95 mA/cm², and the power conversion efficiency (PCE) of P-OTSCs increased from 19.32 % to 20.24 %. We also observed that the external quantum efficiency (EQE) shows an apparent increase in the long wavelength region, reflecting the absorbance of light by PSI. This work is the first to report the integration of PSI into perovskite–organic tandem solar cells, and it motivates new design considerations that can further boost efficiency and utilize natural, earth-abundant pigment proteins.

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来源期刊
Materials Research Bulletin
Materials Research Bulletin 工程技术-材料科学:综合
CiteScore
9.80
自引率
5.60%
发文量
372
审稿时长
42 days
期刊介绍: Materials Research Bulletin is an international journal reporting high-impact research on processing-structure-property relationships in functional materials and nanomaterials with interesting electronic, magnetic, optical, thermal, mechanical or catalytic properties. Papers purely on thermodynamics or theoretical calculations (e.g., density functional theory) do not fall within the scope of the journal unless they also demonstrate a clear link to physical properties. Topics covered include functional materials (e.g., dielectrics, pyroelectrics, piezoelectrics, ferroelectrics, relaxors, thermoelectrics, etc.); electrochemistry and solid-state ionics (e.g., photovoltaics, batteries, sensors, and fuel cells); nanomaterials, graphene, and nanocomposites; luminescence and photocatalysis; crystal-structure and defect-structure analysis; novel electronics; non-crystalline solids; flexible electronics; protein-material interactions; and polymeric ion-exchange membranes.
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