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Elevated air stability in PBDT-DTNT:PCBM solar cells by focusing on roles of fibrillar/patterned nanostructures via graphene/polymer constituents

DOI:10.1016/j.solener.2020.01.031 期刊:Solar Energy 出版年份:2020 更新时间:2025-09-16 10:30:52
摘要: Morphological, electrochemical, and photovoltaic stabilities of the poly[benzodithiophene-bis(decyltetradecylthien) naphthothiadiazole] (PBDT-DTNT):phenyl-C61-butyric acid methyl ester (PC71BM) solar cells were promoted by the pre-designed supramolecules on the basis of reduced graphene oxide (rGO) nanosheets. Nanostructures consisted of the pristine rGO, grafted-rGO/PBDT-DTNT, rGO-polythiophene (GPTh) electrospun nanofiber, grafted-rGO/PBDT-DTNT electrospun nanofiber and rGO/PBDT-DTNT samples. The reduction in photovoltaic characteristics during air aging was the steepest for the unmodified PBDT-DTNT:PC71BM solar cells. From rGO based photovoltaics towards the rGO/PBDT-DTNT modified ones possessing the well-patterned PBDT-DTNT nanofibers, the slopes of graphs decreased. The most stabilized devices were fabricated on the basis of PBDT-DTNT:PC71BM:rGO/PBDT-DTNT active layers (power conversion efficiency (PCE) from 6.09% for upon-fabricated to 4.87% for 1 month aged systems) for having the most red-shifted and intensified absorbance, the largest phase separation, the lowest impedance responses and the highest photovoltaic characteristics during 1 month air aging (short circuit current density (Jsc) of 12.09 mA/cm2, fill factor (FF) of 63%, open circuit voltage (Voc) of 0.64 V, hole mobility (μh) of 5.3 × 10–5 cm2/V s, electron mobility (μe) of 7.9 × 10–4 cm2/V s, charge transfer resistance (Rtr) of 431 Ω cm2 and PCE of 4.87%). The GPTh/PBDT-DTNT/PC71BM (Jsc = 10.31 mA/cm2, FF = 49%, Voc = 0.55 V, Rtr = 796 Ω cm2 and PCE = 2.78%) and grafted-rGO/PBDT-DTNT/PBDT-DTNT (Jsc = 10.98 mA/cm2, FF = 56%, Voc = 0.60 V, Rtr = 539 Ω cm2 and PCE = 3.69%) electrospun nanofibers also imparted the stabilization of devices within 1 month.
作者: Xiaojuan Liu,Pan Ding,Zhihua Yuan,Hui Tian,Youzhou Jiao,Samira Agbolaghi
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To promote the morphological, electrochemical, and photovoltaic stabilities of PBDT-DTNT:PC71BM solar cells by using pre-designed supramolecules based on reduced graphene oxide (rGO) nanosheets.

The pre-designed rGO/PBDT-DTNT supramolecules significantly improved the efficacy and stability of PBDT-DTNT:PC71BM solar cells, demonstrating the highest photovoltaic characteristics and stability during air aging.

The study focuses on the stability of solar cells under specific conditions (air aging, 35% humidity, 35°C) and may not cover all potential degradation mechanisms or environmental conditions.

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