"Plastic" Solar Cells: Self-Assembly of Bulk Heterojunction Nanomaterials by Spontaneous Phase Separation

被引:560
|
作者
Peet, Jeffrey [1 ]
Heeger, Alan J. [1 ]
Bazan, Guillermo C. [1 ]
机构
[1] Univ Calif Santa Barbara, Ctr Polymers & Organ Solids, Santa Barbara, CA 93106 USA
关键词
CHARGE-TRANSPORT; CONJUGATED POLYMER; BAND-GAP; POSTPRODUCTION TREATMENT; DESIGN RULES; MORPHOLOGY; EFFICIENT; POLY(2,7-CARBAZOLE); DISSOCIATION; ORGANIZATION;
D O I
10.1021/ar900065j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
As the global demand for low-cost renewable energy sources intensifies, interest in new routes for converting solar energy to electricity is rapidly increasing. Although photovoltaic cells have been commercially available for more than 50 years, only 0.1% of the total electricity generated in the United States comes directly from sunlight, The earliest commercial solar technology remains the basis for the most prevalent devices in current use, namely, highly-ordered crystalline, inorganic solar cells, commonly referred to as silicon cells. Another class of solar cells that has recently inspired significant academic and industrial excitement is the bulk heterojunction (BHJ) "plastic" solar cell. Research by a rapidly growing community of scientists across the globe is generating a steady stream of new insights into the fundamental physics, the materials design and synthesis, the film processing and morphology, and the device science and architecture of BHJ technology. Future progress in the fabrication of high-performance BHJ cells will depend on our ability to combine aspects of synthetic and physical chemistry, condensed matter physics, and materials science. In this Account, we use a combination of characterization tools to tie together recent advances in BHJ morphology characterization, device photophysics, and thin-film solution processing, illustrating how to identify the limiting factors in solar cell performance. We also highlight how new processing methods, which control both the BHJ phase separation and the internal order of the components, can be implemented to increase the power conversion efficiency (PCE). The failure of many innovative materials to achieve high performance in BHJ solar cell devices has been blamed on "poor morphology" without significant characterization of either the structure of the. phase-separated morphology or the nature of the charge carrier recombination. We demonstrate how properly controlling the "nanomorphology", which is critically dependent on minute experimental details at every step, from synthesis to device construction, provides a clear path to > 10% PCE BHJ cells, which can be fabricated at a fraction of the cost of conventional solar cells.
引用
收藏
页码:1700 / 1708
页数:9
相关论文
共 50 条
  • [31] I&EC 13-Self-assembled bulk heterojunction nanomaterials for low cost solar cells
    Heeger, Alan J.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2008, 235
  • [32] Phase separation on the sphere: Patchy particles and self-assembly
    Bott, M. C.
    Brader, J. M.
    PHYSICAL REVIEW E, 2016, 94 (01)
  • [33] Self-assembly of amorphous biophotonic nanostructures by phase separation
    Dufresne, Eric R.
    Noh, Heeso
    Saranathan, Vinodkumar
    Mochrie, Simon G. J.
    Cao, Hui
    Prum, Richard O.
    SOFT MATTER, 2009, 5 (09) : 1792 - 1795
  • [34] Application of Supramolecular Assembly of Porphyrin Dimers for Bulk Heterojunction Solar Cells
    Hsu, Fang-Chi
    Chen, Jian-Lun
    Kashi, Chiranjeevulu
    Tsao, Po-Wei
    Yeh, Chen-Yu
    Lin, Tai-Yuan
    Chen, Yang-Fang
    JOURNAL OF PHYSICAL CHEMISTRY C, 2017, 121 (37): : 20084 - 20092
  • [35] Functional Nanomaterials Based on Self-Assembly
    Padnya, Pavel
    NANOMATERIALS, 2023, 13 (23)
  • [36] Self-assembly of nanomaterials at fluid interfaces
    Toor, Anju
    Feng, Tao
    Russell, Thomas P.
    EUROPEAN PHYSICAL JOURNAL E, 2016, 39 (05):
  • [37] On the Mechanical Concept of Self-Assembly of Nanomaterials
    V. A. Babeshko
    O. V. Evdokimova
    O. M. Babeshko
    V. S. Evdokimov
    Mechanics of Solids, 2023, 58 : 1528 - 1535
  • [38] On the Mechanical Concept of Self-Assembly of Nanomaterials
    Babeshko, V. A.
    Evdokimova, O. V.
    Babeshko, O. M.
    Evdokimov, V. S.
    MECHANICS OF SOLIDS, 2023, 58 (05) : 1528 - 1535
  • [39] Self-assembly of nanomaterials at fluid interfaces
    Anju Toor
    Tao Feng
    Thomas P. Russell
    The European Physical Journal E, 2016, 39
  • [40] Controlling donor crystallinity and phase separation in bulk heterojunction solar cells by the introduction of orthogonal solvent additives
    Alam, Shahidul
    Meitzner, Rico
    Kaestner, Christian
    Ulbricht, Christoph
    Hoeppener, Stephanie
    Egbe, Daniel A. M.
    Schubert, Ulrich S.
    Hoppe, Harald
    MRS ADVANCES, 2018, 3 (33) : 1891 - 1900