発光可能な有機太陽電池の開発に成功 -発電するディスプレイや高効率有機太陽電池の実現に期待-

2026-04-22 東京科学大学

東京科学大学と北海道大学らの研究チームは、発電機能と発光機能を同時に持つ有機太陽電池の開発に成功した。従来は両立が困難だったが、有機ELで用いられるMR-TADF分子やIST分子を組み合わせ、励起三重項状態へのエネルギー移動を抑制する理想的なエネルギー構造を実現。これにより高輝度赤色発光と良好な発電性能を同一素子内で達成した。さらに開放端電圧は理論限界に迫る高値を示し、無輻射損失の大幅低減も確認された。本成果は発電可能なディスプレイや高効率有機太陽電池の設計指針となり、次世代エネルギー・電子デバイスへの応用が期待される。

発光可能な有機太陽電池の開発に成功 -発電するディスプレイや高効率有機太陽電池の実現に期待-
図1. 同一素子で太陽光の下で発電し電気を貯め、自分自身で貯めた電気で発光する様子

<関連情報>

高発光性有機太陽電池が理論限界電圧に近づき、多機能エネルギーハーベスティングディスプレイを実現 Highly-Emissive Organic Photovoltaics Approaching Theoretical Limit Voltage and Enabling Multifunctional Energy-Harvesting Displays

Qing-Jun Shui, Naoya Aizawa, Jinyao Xu, Atsuko Nihonyanagi, Daigo Miyajima, Ken-ichi Nakayama, Yutaka Majima, Seiichiro Izawa
Advanced Materials  Published: 20 April 2026
DOI:https://doi.org/10.1002/adma.72995

ABSTRACT

Simultaneous light emission and energy harvesting in a single organic diode are critical for multifunctional optoelectronic devices such as light-harvesting displays. However, their realization has been limited by severe non-radiative recombination losses of excited states. Here, we report highly-emissive organic photovoltaics employing donor and acceptor molecules in which the frontier molecular orbitals are alternately localized on adjacent atoms, thereby preserving high triplet energies while minimizing structural relaxation associated with bond stretching. These features suppress non-radiative recombination, enabling both photovoltaic power conversion efficiency and electroluminescence (EL) external quantum efficiency exceeding 1%. Non-radiative recombination rates are reduced by more than five orders of magnitude compared to state-of-the-art organic photovoltaics, allowing the devices to generate a high voltage close to the Shockley–Queisser limit. Furthermore, the same device exhibits red EL at 620 nm with a low turn-on voltage at 1.7 V and luminance above 1000 cd/m2. These results establish a general design principle for efficient organic multifunctional diodes, opening a route to compact, efficient, and versatile optoelectronic platforms that can rival inorganic multifunctional diodes.

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