4.8 Article

Bulk Heterojunction Quasi-Two-Dimensional Perovskite Solar Cell with 1.18 V High Photovoltage

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 11, 期 3, 页码 2935-2943

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b17030

关键词

two-dimensional perovskite; trap-mediated recombination; energy-transfer bottleneck; bulk heterojunction; large photovoltage

资金

  1. Research Grants Council of Hong Kong [AoE/P-03/08, N_CUHK405/12, T23-407/13-N, AoE/P-02/12, 14207515, 14204616]
  2. CUHK Group Research Scheme
  3. Natural Science Foundation of China [21776315]
  4. Shenzhen Peacock Plan [KQTD2016053015544057]
  5. Nanshan Pilot Plan [LHTD20170001]
  6. PetroChina Innovation Foundation [2017D5007-0402]
  7. Natural Science Foundation of Shandong Province [ZR2016BL12]
  8. Qingdao independent innovation program [16-5-1-88-jch]

向作者/读者索取更多资源

Multicomponent quasi-two-dimensional perov-skites (Q-2DPs) have efficient luminescence and improved stability, which are highly desirable for light-emitting diode and perovskite solar cell (PSC). However, the lack of radiative recombination at room temperature is still not well understood and the performance of PSC is not good enough as well. The open-circuit voltage (V-OC) is even lower than that of three-dimensional (3D) PSC with a narrower band gap. In this work, we study the energy transfer of excitons between their multiple components by time-resolved photoluminescence and find that charge transfer from high-energy states to low-energy state is gradually suppressed during elevating temperature owing to trap-mediated recombination. This may reveal the bottleneck of luminescence at room temperature in Q-2DPs, leading to large photovoltage loss in 2D PSC. Therefore, we develop a p-i-n bulk heterojunction (BHJ) structure to reduce the nonradiative recombination and obtain high V-OC of 1.18 V for (PMA)(2)MA(4)Pb(5)I(15)Cl (33.3% PMA) BHJ device, much higher than that of the planar counterparts. The enhanced efficiency is attributed to the improved exciton dissociation via BHJ interface. Our results provide an important step toward high V-OC and stable 2D PSCs, which could be used for tandem solar cell and colorful photovoltaic windows.

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