Organic Solar Cells: Understanding the Role of Forster Resonance Energy Transfer

被引:106
|
作者
Feron, Krishna [1 ,2 ]
Belcher, Warwick J. [1 ]
Fell, Christopher J. [2 ]
Dastoor, Paul C. [1 ]
机构
[1] CSIRO Energy Technol, Newcastle, NSW 2304, Australia
[2] Univ Newcastle, Ctr Organ Elect, Callaghan, NSW 2308, Australia
关键词
organic solar cells; photovoltaic; exciton; FRET; energy transfer; photoconversion mechanism; review; PPV/PORPHYRIN/PCBM HETEROJUNCTION DEVICES; EXCITON DIFFUSION LENGTH; CHARGE-TRANSFER STATES; MONTE-CARLO; THIN-FILMS; PHOTOCURRENT GENERATION; CONJUGATED POLYMERS; PHOTOVOLTAIC CELLS; TRANSFER DYNAMICS; ELECTRON-TRANSFER;
D O I
10.3390/ijms131217019
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Organic solar cells have the potential to become a low-cost sustainable energy source. Understanding the photoconversion mechanism is key to the design of efficient organic solar cells. In this review, we discuss the processes involved in the photo-electron conversion mechanism, which may be subdivided into exciton harvesting, exciton transport, exciton dissociation, charge transport and extraction stages. In particular, we focus on the role of energy transfer as described by Forster resonance energy transfer (FRET) theory in the photoconversion mechanism. FRET plays a major role in exciton transport, harvesting and dissociation. The spectral absorption range of organic solar cells may be extended using sensitizers that efficiently transfer absorbed energy to the photoactive materials. The limitations of Forster theory to accurately calculate energy transfer rates are discussed. Energy transfer is the first step of an efficient two-step exciton dissociation process and may also be used to preferentially transport excitons to the heterointerface, where efficient exciton dissociation may occur. However, FRET also competes with charge transfer at the heterointerface turning it in a potential loss mechanism. An energy cascade comprising both energy transfer and charge transfer may aid in separating charges and is briefly discussed. Considering the extent to which the photo-electron conversion efficiency is governed by energy transfer, optimisation of this process offers the prospect of improved organic photovoltaic performance and thus aids in realising the potential of organic solar cells.
引用
收藏
页码:17019 / 17047
页数:29
相关论文
共 50 条
  • [21] Improved Exciton Diffusion through Modulating Förster Resonance Energy Transfer for Efficient Organic Solar Cells
    Zhou, Mingxu
    Zhang, Kangning
    Li, Xuewu
    Ge, Yufeng
    Zhang, Wenqing
    Lu, Peng
    Hao, Xiaotao
    SOLAR RRL, 2024, 8 (13):
  • [22] Charge transfer state characterization and voltage losses of organic solar cells
    Jungbluth, Anna
    Kaienburg, Pascal
    Riede, Moritz
    JOURNAL OF PHYSICS-MATERIALS, 2022, 5 (02):
  • [23] Ultramarine, a Chromoprotein Acceptor for Forster Resonance Energy Transfer
    Pettikiriarachchi, Anne
    Gong, Lan
    Perugini, Matthew A.
    Devenish, Rodney J.
    Prescott, Mark
    PLOS ONE, 2012, 7 (07):
  • [24] Quantum dots for Forster Resonance Energy Transfer FRET
    Dos Santos, Marcelina Cardoso
    Algar, W. Russ
    Medintz, Igor L.
    Hildebrandt, Niko
    TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2020, 125
  • [25] How to avoid bleeding in Forster resonance energy transfer
    Nagy, Peter
    Szoellosi, Janos
    CYTOMETRY PART A, 2012, 81A (02) : 108 - 109
  • [26] Plasmon-Controlled Forster Resonance Energy Transfer
    Zhao, Lei
    Ming, Tian
    Shao, Lei
    Chen, Huanjun
    Wang, Jianfang
    JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (14) : 8287 - 8296
  • [27] Nanophotonic Control of the Forster Resonance Energy Transfer Efficiency
    Blum, Christian
    Zijlstra, Niels
    Lagendijk, Ad
    Wubs, Martijn
    Mosk, Allard P.
    Subramaniam, Vinod
    Vos, Willem L.
    PHYSICAL REVIEW LETTERS, 2012, 109 (20)
  • [28] Energy Transfer Kinetics in Photosynthesis as an Inspiration for Improving Organic Solar Cells
    Nganou, Collins
    Lackner, Gerhard
    Teschome, Bezu
    Deen, M. Jamal
    Adir, Noam
    Pouhe, David
    Lupascu, Doru C.
    Mkandawire, Martin
    ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (22) : 19030 - 19039
  • [29] Exciton transport in organic semiconductors: Forster resonance energy transfer compared with a simple random walk
    Feron, K.
    Zhou, X.
    Belcher, W. J.
    Dastoor, P. C.
    JOURNAL OF APPLIED PHYSICS, 2012, 111 (04)
  • [30] Targeted Delivery Inside the Cells Directly Visualized with Forster Resonance Energy Transfer (FRET)
    Zlotnikov, Igor D.
    Belogurova, Natalya G.
    Kudryashova, Elena V.
    POLYMERS, 2025, 17 (06)