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Rapid solidification for green-solvent-processed large-area organic solar modules with >16% efficiency

Zhang, Ben (författare)
Soochow Univ, Peoples R China
Chen, Weijie (författare)
Soochow Univ, Peoples R China
Chen, Haiyang (författare)
Soochow Univ, Peoples R China
visa fler...
Zeng, Guang (författare)
Soochow Univ, Peoples R China
Zhang, Rui (författare)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten
Li, Hongxiang (författare)
Sichuan Univ, Peoples R China
Wang, Yunfei (författare)
Univ Southern Mississippi, MS 39406 USA
Gu, Xiaodan (författare)
Univ Southern Mississippi, MS 39406 USA
Sun, Weiwei (författare)
Soochow Univ, Peoples R China
Gu, Hao (författare)
Soochow Univ, Peoples R China
Gao, Feng (författare)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten
Li, Yaowen (författare)
Soochow Univ, Peoples R China
Li, Yongfang (författare)
Soochow Univ, Peoples R China; Chinese Acad Sci, Peoples R China
visa färre...
 (creator_code:org_t)
2024
2024
Engelska.
Ingår i: Energy & Environmental Science. - : ROYAL SOC CHEMISTRY. - 1754-5692 .- 1754-5706.
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • Enabling green-solvent-processed large-area organic solar cells (OSCs) is of great significance to their industrialization. However, precisely controlling the temperature-dependent fluid mechanics and evaporation behavior of green solvents with high-boiling points is challenging. Controlling these parameters is essential to prevent the non-uniform distribution of active layer components and severe molecule aggregation, which collectively degrade the power conversion efficiency (PCE) of large-scale devices. In this study, we revealed that the temperature gradient distribution across a wet film is the root of the notorious Marangoni effect, which leads to the formation of a severely non-uniform active layer on a large scale. Thus, a rapid solidification strategy was proposed to accelerate the evaporation of toluene, a green solvent, at room temperature. This strategy simultaneously inhibits the Marangoni effect and suppresses molecular aggregation in the wet film, allowing the formation of a nano-scale phase separation active layer with uniform morphology. The resultant toluene-processed 15.64-cm2 large-area OSC module achieves an outstanding PCE of 16.03% (certified: 15.69%), which represents the highest reported PCE of green-solvent-processed OSC modules. Notably, this strategy also exhibits a weak scale dependence on the PCE, and we successfully achieved a state-of-the-art PCE of 14.45% for a 72.00-cm2 OSC module. A rapid solidification strategy was developed for simultaneously avoiding the Marangoni effect and suppressing molecular aggregation. The resultant 15.64 cm2 large-area OSC module exhibited a record power conversion efficiency of 16.03%.

Ämnesord

NATURVETENSKAP  -- Kemi -- Fysikalisk kemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences -- Physical Chemistry (hsv//eng)

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