Sequential Processing for Organic Photovoltaics: Design Rules for Morphology Control by Tailored Semi‐Orthogonal Solvent Blends. Issue 11 (18th March 2015)
- Record Type:
- Journal Article
- Title:
- Sequential Processing for Organic Photovoltaics: Design Rules for Morphology Control by Tailored Semi‐Orthogonal Solvent Blends. Issue 11 (18th March 2015)
- Main Title:
- Sequential Processing for Organic Photovoltaics: Design Rules for Morphology Control by Tailored Semi‐Orthogonal Solvent Blends
- Authors:
- Aguirre, Jordan C.
Hawks, Steven A.
Ferreira, Amy S.
Yee, Patrick
Subramaniyan, Selvam
Jenekhe, Samson A.
Tolbert, Sarah H.
Schwartz, Benjamin J. - Abstract:
- <abstract abstract-type="main" xml:lang="en"> <title> <x xml:space="preserve">Abstract</x> </title> <p>Design rules are presented for significantly expanding sequential processing (SqP) into previously inaccessible polymer:fullerene systems by tailoring binary solvent blends for fullerene deposition. Starting with a base solvent that has high fullerene solubility, 2‐chlorophenol (2‐CP), ellipsometry‐based swelling experiments are used to investigate different co‐solvents for the fullerene‐casting solution. By tuning the Flory‐Huggins <italic>χ</italic> parameter of the 2‐CP/co‐solvent blend, it is possible to optimally swell the polymer of interest for fullerene interdiffusion without dissolution of the polymer underlayer. In this way solar cell power conversion efficiencies are obtained for the PTB7 (poly[(4, 8‐bis[(2‐ethylhexyl)oxy]benzo[1, 2‐<italic>b</italic>:4, 5‐<italic>b</italic>′]dithiophene‐2, 6‐diyl)(3‐fluoro‐2‐[(2‐ethylhexyl)carbonyl]thieno[3, 4‐<italic>b</italic>]thiophenediyl)]) and PC<sub>61</sub>BM (phenyl‐C<sub>61</sub>‐butyric acid methyl ester) materials combination that match those of blend‐cast films. Both semicrystalline (e.g., P3HT (poly(3‐hexylthiophene‐2, 5‐diyl)) and entirely amorphous (e.g., PSDTTT (poly[(4, 8‐di(2‐butyloxy)benzo[1, 2‐b:4, 5‐b′]dithiophene‐2, 6‐diyl)‐alt‐(2, 5‐bis(4, 4′‐bis(2‐octyl)dithieno[3, 2‐b:2′3′‐d]silole‐2, 6‐diyl)thiazolo[5, 4‐d]thiazole)]) conjugated polymers can be processed into highly efficient photovoltaic devices using<abstract abstract-type="main" xml:lang="en"> <title> <x xml:space="preserve">Abstract</x> </title> <p>Design rules are presented for significantly expanding sequential processing (SqP) into previously inaccessible polymer:fullerene systems by tailoring binary solvent blends for fullerene deposition. Starting with a base solvent that has high fullerene solubility, 2‐chlorophenol (2‐CP), ellipsometry‐based swelling experiments are used to investigate different co‐solvents for the fullerene‐casting solution. By tuning the Flory‐Huggins <italic>χ</italic> parameter of the 2‐CP/co‐solvent blend, it is possible to optimally swell the polymer of interest for fullerene interdiffusion without dissolution of the polymer underlayer. In this way solar cell power conversion efficiencies are obtained for the PTB7 (poly[(4, 8‐bis[(2‐ethylhexyl)oxy]benzo[1, 2‐<italic>b</italic>:4, 5‐<italic>b</italic>′]dithiophene‐2, 6‐diyl)(3‐fluoro‐2‐[(2‐ethylhexyl)carbonyl]thieno[3, 4‐<italic>b</italic>]thiophenediyl)]) and PC<sub>61</sub>BM (phenyl‐C<sub>61</sub>‐butyric acid methyl ester) materials combination that match those of blend‐cast films. Both semicrystalline (e.g., P3HT (poly(3‐hexylthiophene‐2, 5‐diyl)) and entirely amorphous (e.g., PSDTTT (poly[(4, 8‐di(2‐butyloxy)benzo[1, 2‐b:4, 5‐b′]dithiophene‐2, 6‐diyl)‐alt‐(2, 5‐bis(4, 4′‐bis(2‐octyl)dithieno[3, 2‐b:2′3′‐d]silole‐2, 6‐diyl)thiazolo[5, 4‐d]thiazole)]) conjugated polymers can be processed into highly efficient photovoltaic devices using the solvent‐blend SqP design rules. Grazing‐incidence wide‐angle x‐ray diffraction experiments confirm that proper choice of the fullerene casting co‐solvent yields well‐ordered interdispersed bulk heterojunction (BHJ) morphologies without the need for subsequent thermal annealing or the use of trace solvent additives (e.g., diiodooctane). The results open SqP to polymer/fullerene systems that are currently incompatible with traditional methods of device fabrication, and make BHJ morphology control a more tractable problem.</p> </abstract> … (more)
- Is Part Of:
- Advanced energy materials. Volume 5:Issue 11(2015:Jun.)
- Journal:
- Advanced energy materials
- Issue:
- Volume 5:Issue 11(2015:Jun.)
- Issue Display:
- Volume 5, Issue 11 (2015)
- Year:
- 2015
- Volume:
- 5
- Issue:
- 11
- Issue Sort Value:
- 2015-0005-0011-0000
- Page Start:
- n/a
- Page End:
- n/a
- Publication Date:
- 2015-03-18
- Subjects:
- Energy harvesting -- Materials -- Periodicals
Energy conversion -- Materials -- Periodicals
Energy storage -- Materials -- Periodicals
Photovoltaics -- Periodicals
Fuel cells -- Periodicals
Thermoelectric materials -- Periodicals
621.31 - Journal URLs:
- http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1614-6840/ ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/aenm.201402020 ↗
- Languages:
- English
- ISSNs:
- 1614-6832
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 0696.850700
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 4021.xml