A Spectral Density Function Approach for Design of Organic Photovoltaic Cells

Author(s):  
Umar Farooq Ghumman ◽  
Akshay Iyer ◽  
Rabindra Dulal ◽  
Aaron Wang ◽  
Joydeep Munshi ◽  
...  

Organic Photovoltaic Cells (OPVCs), having received significant attention over the last decade, are yet to be established as viable alternatives to conventional solar cells due to their low power conversion efficiency (PCE). Complex interactions of several phenomena coupled with the lack of understanding regarding the influence of fabrication conditions and nanostructure morphology have been major barriers to realizing higher PCE. To this end, we propose a computational microstructural design framework addressing the Processing–Structure–Performance (PSP) linkages for designing the active layer of P3HT:PCBM based OPVCs conforming to bulk heterojunction architecture. The framework pivots around the Spectral Density Function (SDF), a frequency space microstructure characterization and reconstruction methodology, for microstructure design representation. Nanostructure images obtained by novel Scanning Tunneling Microscopy are used to validate the applicability of SDF for representing active layer morphology in OPVCs. SDF enables a low dimensional microstructure representation that is crucial in formulating a parametrized microstructure optimization scheme. A level-cut Gaussian Random Field (governed by SDF) technique is used to generate reconstructions that serve as Representative Volume Elements (RVEs) for structure-performance simulations. A novel structure-performance simulation approach is developed using physics-based performance metric, Incident Photon to Converted Electron (IPCE) ratio, to account for the impact of microstructural features on OPVC performance. Finally, an SDF based computational IPCE optimization study using metamodels created using design of computer experiments over three design variables results in 36.75% increase in IPCE, underlining the efficacy of proposed design framework.

2018 ◽  
Vol 140 (11) ◽  
Author(s):  
Umar Farooq Ghumman ◽  
Akshay Iyer ◽  
Rabindra Dulal ◽  
Joydeep Munshi ◽  
Aaron Wang ◽  
...  

Organic photovoltaic cells (OPVCs), having received significant attention over the last decade, are yet to be established as viable alternatives to conventional solar cells due to their low power conversion efficiency (PCE). Complex interactions of several phenomena coupled with the lack of understanding regarding the influence of fabrication conditions and nanostructure morphology have been major barriers to realizing higher PCE. To this end, we propose a computational microstructure design framework for designing the active layer of P3HT:PCBM based OPVCs conforming to the bulk heterojunction (BHJ) architecture. The framework pivots around the spectral density function (SDF), a frequency space microstructure characterization, and reconstruction methodology, for microstructure design representation. We validate the applicability of SDF for representing the active layer morphology in OPVCs using images of the nanostructure obtained by cross-sectional scanning tunneling microscopy and spectroscopy (XSTM/S). SDF enables a low-dimensional microstructural representation that is crucial in formulating a parametric-based microstructure optimization scheme. A level-cut Gaussian random field (GRF, governed by SDF) technique is used to generate reconstructions that serve as representative volume elements (RVEs) for structure–performance simulations. A novel structure–performance (SP) simulation approach is developed using a physics-based performance metric, incident photon to converted electron (IPCE) ratio, to account for the impact of microstructural features on OPVC performance. Finally, a SDF-based computational IPCE optimization study incorporating only three design variables results in 36.75% increase in IPCE, underlining the efficacy of the proposed design framework.


2017 ◽  
Vol 1 (9) ◽  
pp. 2016-2027 ◽  
Author(s):  
Ali Nourdine ◽  
Lionel Flandin ◽  
Nicole Albérola ◽  
Lara Perrin ◽  
Emilie Planès ◽  
...  

For the first time, an extrusion process is used to produce a perfectly nanostructured organic photoactive layer.


2016 ◽  
Vol 52 (1) ◽  
pp. 92-95 ◽  
Author(s):  
Gaël H. L. Heintges ◽  
Jacobus J. van Franeker ◽  
Martijn M. Wienk ◽  
René A. J. Janssen

The impact of branching in a diketopyrrolopyrrole polymer on the performance of polymer–fullerene photovoltaic cells is investigated.


2016 ◽  
Vol 4 (47) ◽  
pp. 18478-18489 ◽  
Author(s):  
Dan Zhou ◽  
Xiaofang Cheng ◽  
Haitao Xu ◽  
Hanjun Yang ◽  
Huimin Liu ◽  
...  

The self-assembled diblock CPEs PFEO-b-PTNBr and PFEO-b-PTImBr can partially induce a favorable face-on orientation of the active layer.


2008 ◽  
Vol 8 (9) ◽  
pp. 4533-4537 ◽  
Author(s):  
Hak Sung Lee ◽  
Sung Cheol Yoon ◽  
Jongsun Lim ◽  
Myongsoo Lee ◽  
Changjin Lee

The feasibility of novel 1,3-diketone modified C60s (compound 1 and 2) was studied as acceptor materials in organic photovoltaic cells (OPVC). 1,3-Diketone modified fullerenes were synthesized by the addition reaction of 1,3-bis(5′-hexylthiophen-2′-yl)propane-1,3-dione with C60 in the presence of DBU (1,8-diazabicyclo[5,4,0]undec-7-ene). From this procedure two products can be prepared, which are mono- (1) and di-substituted compound (2) in the yield of 40% and 17%, respectively. OPVCs fabricated by using the mixture of P3HT and compound 1 as an active layer showed excellent power conversion efficiency of about 3.42% after annealed at 160 °C for 15 min and we believe that substantial improvements can be realized by nano-structured heterojunction. It was demonstrated that 1,3-diketone modified C60 (compound 1) was one of the promising candidates for acceptor materials for OPVCs.


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