Polymer/molecular semiconductor all-organic composites for high-temperature dielectric energy storage

Полностью органические композиты на основе полимеров и молекулярных полупроводников для диэлектрического накопления энергии при высоких температурах
Chao Yuan, Yao Zhou, Yujie Zhu, Jiajie Liang, Shaojie Wang, Simin Peng, Yushu Li, Sang Cheng, Mingcong Yang, Jun Hu, Bo Zhang, Rong Zeng, Jinliang He, Qi Li
2020-08-06

all-organic compositesdischarge efficiencyenergy densityhigh-temperature dielectric energy storagemolecular semiconductors
Abstract Dielectric polymers for electrostatic energy storage suffer from low energy density and poor efficiency at elevated temperatures, which constrains their use in the harsh-environment electronic devices, circuits, and systems. Although incorporating insulating, inorganic nanostructures into dielectric polymers promotes the temperature capability, scalable fabrication of high-quality nanocomposite films remains a formidable challenge. Here, we report an all-organic composite comprising dielectric polymers blended with high-electron-affinity molecular semiconductors that exhibits concurrent high energy density (3.0 J cm−3) and high discharge efficiency (90%) up to 200 °C, far outperforming the existing dielectric polymers and polymer nanocomposites. We demonstrate that molecular semiconductors immobilize free electrons via strong electrostatic attraction and impede electric charge injection and transport in dielectric polymers, which leads to the substantial performance improvements. The all-organic composites can be fabricated into large-area and high-quality films with uniform dielectric and capacitive performance, which is crucially important for their successful commercialization and practical application in high-temperature electronics and energy storage devices.
1
All-organic composites combining dielectric polymers with high-electron-affinity molecular semiconductors achieve 3.0 J cm−3 energy density and 90% discharge efficiency up to 200 °C.
2
Molecular semiconductors immobilize free electrons through strong electrostatic attraction, suppressing charge injection and transport within the dielectric polymers.
3
The approach addresses fabrication challenges associated with inorganic nanostructures and supports practical high-temperature electronics and energy-storage applications.
4
The composites enable scalable fabrication of large-area, high-quality films with uniform dielectric and capacitive performance.
5
The composites substantially outperform existing dielectric polymers and polymer nanocomposites in high-temperature energy-storage performance.

all-organic composites of dielectric polymers blended with high-electron-affinity molecular semiconductors

high-temperature dielectric energy-storage performance, including energy density, discharge efficiency, and the mechanisms of suppressed charge injection and transport

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2020-08-06
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Chao Yuan
Yao Zhou
Yujie Zhu
Jiajie Liang
Shaojie Wang
Simin Peng
Yushu Li
Sang Cheng
Mingcong Yang
Jun Hu
Bo Zhang
Rong Zeng
Jinliang He
Qi Li
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