Journal Article10.1007/S00339-003-2494-9
Organic p -i- n solar cells
Bert Maennig,Jens Drechsel,D. Gebeyehu,Paul Simon,F. Kozlowski,Ansgar Werner,Fenghong Li,S. Grundmann,S. Sonntag,M. Koch,Karl Leo,Martin Pfeiffer,Harald Hoppe,Dieter Meissner,Niyazi Serdar Sariciftci,Ingo Riedel,Vladimir Dyakonov,Juergen Parisi +17 more
375
TL;DR: In this paper, a p-i-n-type heterojunction architecture for organic solar cells where the active region is sandwiched between two doped wide-gap layers is introduced.
read more
Abstract: We introduce a p-i-n-type heterojunction architecture for organic solar cells where the active region is sandwiched between two doped wide-gap layers. The term p-i-n means here a layer sequence in the form p-doped layer, intrinsic layer and n-doped layer. The doping is realized by controlled co-evaporation using organic dopants and leads to conductivities of 10-4 to 10-5 S/cm in the p- and n-doped wide-gap layers, respectively. The photoactive layer is formed by a mixture of phthalocyanine zinc (ZnPc) and the fullerene C60 and shows mainly amorphous morphology. As a first step towards p-i-n structures, we show the advantage of using wide-gap layers in M-i-p-type diodes (metal layer–intrinsic layer–p-doped layer). The solar cells exhibit a maximum external quantum efficiency of 40% between 630-nm and 700-nm wavelength. With the help of an optical multilayer model, we optimize the optical properties of the solar cells by placing the active region at the maximum of the optical field distribution. The results of the model are largely confirmed by the experimental findings. For an optically optimized device, we find an internal quantum efficiency of around 82% under short-circuit conditions. Adding a layer of 10-nm thickness of the red material N,N′-dimethylperylene-3,4:9,10-dicarboximide (Me-PTCDI) to the active region, a power-conversion efficiency of 1.9% for a single cell is obtained. Such optically thin cells with high internal quantum efficiency are an important step towards high-efficiency tandem cells. First tandem cells which are not yet optimized already show 2.4% power-conversion efficiency under simulated AM 1.5 illumination of 125 mW/cm2 .
read more
Chat with Paper
AI Agents for this Paper
Find similar papers on Google Scholar, PubMed and Arxiv
Write a critical review of this paper
Analyze citations of this paper to find unaddressed research gaps
Citations
Conjugated polymer-based organic solar cells
TL;DR: This review gives a general introduction to the materials, production techniques, working principles, critical parameters, and stability of the organic solar cells, and discusses the alternative approaches such as polymer/polymer solar cells and organic/inorganic hybrid solar cells.
6.4K
Design Rules for Donors in Bulk‐Heterojunction Solar Cells—Towards 10 % Energy‐Conversion Efficiency
Markus C. Scharber,David Mühlbacher,Markus Koppe,Patrick Denk,Christoph Waldauf,Alan J. Heeger,Christoph J. Brabec +6 more
TL;DR: In this article, the authors presented a review of several organic photovoltaics (OPV) technologies, including conjugated polymers with high-electron-affinity molecules like C60 (as in the bulk-heterojunction solar cell).
5.2K
Polymer‐Fullerene Bulk‐Heterojunction Solar Cells
Christoph J. Brabec,Srinivas (Jimmy) Gowrisanker,Jonathan Halls,Darin W. Laird,Shijun Jia,Shawn P. Williams +5 more
TL;DR: An outlook is presented on what will be required to drive this young photovoltaic technology towards the next major milestone, a 10% power conversion efficiency, considered by many to represent the efficiency at which OPV can be adopted in wide-spread applications.
3.2K
Organic solar cells: An overview
TL;DR: The current status of the field of organic solar cells and the important parameters to improve their performance are discussed in this paper. But, the two competitive production techniques used today are either wet solution processing or dry thermal evaporation of the organic constituents.
2.6K
Small molecule organic semiconductors on the move: promises for future solar energy technology.
Amaresh Mishra,Peter Bäuerle +1 more
TL;DR: On the eve of commercialization of organic solar cells, this review provides an overview over efficiencies attained with small molecules/oligomers in OSCs and reflects materials and device concepts developed over the last decade.
1.8K
References
Organic materials for electronic and optoelectronic devices
TL;DR: In this paper, the synthesis, properties, functions and potential applications for electronic and optoelectronic devices of photo-and electro-active organic materials are discussed, including amorphous molecular materials, titanyl phthalocyanine, oligothiophenes with well-defined structures, and non-conjugated polymers containing pendant oligothophenes or other π-electron systems.
1.6K
Very-high-efficiency double-heterostructure copper phthalocyanine/C60 photovoltaic cells
P. Peumans,Stephen R. Forrest +1 more
TL;DR: In this paper, the authors demonstrate an external power conversion efficiency of (3.6±0.2)% under AM 1.5 spectral illumination of 150 mW/cm2 (1.5 suns) with vacuum-deposited copper phthalocyanine/C60 thin-film double-heterostructure photovoltaic cells incorporating an exciton blocking layer (EBL).
1.1K
Crystal structure and bonding of ordered C60
William I. F. David,Richard M. Ibberson,Judy C. Matthewman,Kosmas Prassides,T. John S. Dennis,Jonathan P. Hare,Harold W. Kroto,Roger Taylor,David R. M. Walton +8 more
TL;DR: In this paper, the packing configuration of C60 molecules is revealed in an anticlockwise manner around the [111] direction by ∼98° from the ideal Fm3¯ configuration, which is due to an optimized ordering scheme in which electron-rich short inter-pentagon bonds face the electron-poor pentagon centres of adjacent C60 units.
953
High photovoltage multiple-heterojunction organic solar cells incorporating interfacial metallic nanoclusters
A. Yakimov,S. R. Forrest +1 more
TL;DR: In this paper, the authors demonstrate high open circuit voltage (Voc) organic photovoltaic (PV) cells that incorporate two, three, or five stacked, thin heterojunctions (HJs) consisting of Cu-phthalocyanine as a donor, and 3,4,9,10 perylenetetracarboxylic bis-benzimidazole as an acceptor.
471
Metal cluster enhanced organic solar cells
TL;DR: In this paper, a Schottky junction formed at the interface of ITO and zinc phthalocyanine was investigated to study the influence of the metal particles on the optical extinction spectra and on the short circuit photocurrent spectra of such constructed organic solar cells.
455