Open Access Article
Yann
Kervella
a,
José Maria
Andrés Castán
a,
Yatzil Alejandra
Avalos-Quiroz
b,
Anass
Khodr
b,
Quentin
Eynaud
b,
Tomoyuki
Koganezawa
c,
Noriyuki
Yoshimoto
d,
Olivier
Margeat
b,
Agnès
Rivaton
e,
Antonio J.
Riquelme
a,
Valid Mwatati
Mwalukuku
a,
Jacques
Pécaut
a,
Benjamin
Grévin
a,
Christine
Videlot-Ackermann
b,
Jörg
Ackermann
b,
Renaud
Demadrille
a and
Cyril
Aumaître
*a
aIRIG-SyMMES, Université Grenoble Alpes/CEA/CNRS, Grenoble, 38000, France. E-mail: cyril.aumaitre@cea.fr
bAix Marseille Univ, CNRS, CINAM, Marseille, France
cIndustrial Application Division, Japan Synchrotron Radiation Research Institute (JASRI), Sayo, Hyogo 679-5198, Japan
dDepartment of Physical Science and Materials Engineering, Iwate University, Ueda, Morioka, 020 8551, Japan
eUniv. Clermont Auvergne, CNRS, SIGMA Clermont Inst. de Chimie de Clermont-Ferrand, UMR 6296 63000 Clermont-Ferrand, France
First published on 6th February 2023
We present the simple synthesis of a star-shape non-fullerene acceptor (NFA) for application in organic solar cells. This NFA possesses a D(A)3 structure in which the electron-donating core is an aza-triangulene unit and we report the first crystal structure for a star shape NFA based on this motive. We fully characterized this molecule's optoelectronic properties in solution and thin films, investigating its photovoltaic properties when blended with PTB7-Th as the electron donor component. We demonstrate that the aza-triangulene core leads to a strong absorption in the visible range with an absorption edge going from 700 nm in solution to above 850 nm in the solid state. The transport properties of the pristine molecule were investigated in field effect transistors (OFETs) and in blends with PTB7-Th following a Space-Charge-Limited Current (SCLC) protocol. We found that the mobility of electrons measured in films deposited from o-xylene and chlorobenzene are quite similar (up to 2.70 × 10−4 cm2 V−1 s−1) and that the values are not significantly modified by thermal annealing. The new NFA combined with PTB7-Th in the active layer of inverted solar cells leads to a power conversion efficiency of around 6.3% (active area 0.16 cm2) when processed from non-chlorinated solvents without thermal annealing. Thanks to impedance spectroscopy measurements performed on the solar cells, we show that the charge collection efficiency of the devices is limited by the transport properties rather than by recombination kinetics. Finally, we investigated the stability of this new NFA in various conditions and show that the star-shape molecule is more resistant against photolysis in the presence and absence of oxygen than ITIC.
10th Anniversary StatementSince the Journal of Materials Chemistry C was founded ten years ago, we have regularly published our work in this journal. Three years ago, I had the great honour of becoming one of its Associate Editors. For me and my co-workers, the Journal of Materials Chemistry C is one of the best journals in materials science because it publishes papers that propose new concepts and inspire new directions for research, especially in the field of organic (opto)-electrics and photonics. This journal brings together a large community of researchers in chemistry, physics and materials science. The synergy between these disciplines is very important for the development of cutting-edge research and technologies. I am pleased and proud to contribute to the development and growth of this journal and wish that it continues to play a leading role in the field of materials science. (R. Demadrille) |
Star shape NFAs show some advantages compared to linear systems, such as their 3D structure that promotes an isotropic charge transport or lowers the aggregation propensity that can enhance the nanoscale phase separation in thin films.22 The main families of star shape molecules comprise spiro-fluorene,22 perylene diimide,23–25 a triphenylamine (TPA) or truxene core.26–29 We learn from previous works that the bulkiness of the truxene core, which comes from the alkyl side chains, limits the molecular aggregation and tends to stabilize the morphology.29 Unfortunately, truxene is rather sensitive to photo-oxidation, which can lead to rapid performance degradation.30 The TPA unit has often been used as a core to design star-shape NFAs leading to increased exciton dissociation efficiency in blends. Unfortunately, the TPA unit's poor rigidity and the molecule's strong distortion can be detrimental to the transport and impact the blends’ thermal and morphological stability.22
To solve these problems, Xiong et al. have proposed the synthesis of an NFA molecule based on a fused-TPA core, also known as aza-triangulene.31 This molecule was coupled with 3 perylene diimide acceptor units through dimethylmethene-spacers (DMTPA-PDI3). This molecular design induced a better π-electron delocalization resulting in a wider spectral absorption and a higher LUMO level. When used in blend with PTB7-Th, this star shape NFA shows a low intermolecular aggregation, giving rise to a uniform bulk-heterojunction and a balanced charge transport. To the best of our knowledge, DMTPA-PDI3 is the only example containing an aza-triangulene central unit in the construction of star shape NFA materials, leading to a PCE of 5% when used with PTB7-Th.
Our interest in aza-triangulene-based molecules not only comes from their better optical properties and lower propensity to aggregate when mixed with polymers but also from their remarkable electrochemical stability. Compared to TPA-based molecules, the central sp3-nitrogen of aza-triangulene is shielded by the substituents attached to the carbon bridge linking the phenyl units.32,33 This helps stabilizing molecules either in the neutral or even in their oxidized states.34
Surprisingly, only a few examples of small molecules based on an aza-triangulene core have been reported for use in bulk-heterojunction solar cells, mainly as donor components.35–37
To explore further the potential of star shape NFA molecules based on an aza-triangulene core in organic solar cells, in this work, we designed and synthesized a novel star shape NFA embedding an aza-triangulene unit functionalized by 3 electron accepting units based on 2-(3-oxo-indan-1-ylidene)-malononitrile groups. These accepting groups are connected to the central unit through a thiophene-vinylene bridge. We report the crystal structure of this molecule, being the first one reported so far for a star shape molecule based on an aza-triangulene unit. Then, we investigate its optoelectronic and transport properties in detail, and report its photovoltaic performances in blend with PTB7-Th (deposited from non-chlorinated solvent) leading to a maximum PCE of 6.27%. We identify the factors limiting the efficiency of this molecule in devices thanks to impedance spectroscopy measurements and, finally, we study its degradation mechanisms.
After the purification of the AzaTk molecule, we obtained crystals suitable for X-ray crystallographic analysis (Fig. 1b) by vapour diffusion method in a dibromomethane/cyclohexane mixture. From the X-Ray structure, we confirm the planarization of the triphenylamine core.34 We clearly see that the hexylphenyl units on the sp3 carbon are oriented in the axial and the equatorial positions leading to the formation of a “cage” around the nitrogen atom of the central electron-rich unit. The vinylene bridges are all oriented in cis configuration with the cyano groups pointing outwards of the core. The close interactions between the oxygen and sulfur atoms planarize the extremities without preferential orientation for the thiophene linked to the core. One should also mention that the distance between the electron accepting units of two different molecules in the crystal is 3.37 Å, which is typical for pi-stacking interactions.
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| Fig. 1 (a) Synthesis of AzaTk non fullerene acceptor. X-Ray structure of the AzaTk molecule (b) top view, (c) side view, (d) crystal-packing. | ||
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| Fig. 2 Absorption spectra of AzaTk in solution and in thin films. Energy levels and electron density of the HOMO (left) and LUMO (right) of AzaTk obtained by cyclic voltammetry and DFT calculations. | ||
In solution, the molecule shows a broad absorption band across the visible spectrum with a maximum found at 642 nm (CB) and 630 nm (o-xylene) corresponding to the HOMO–LUMO transition (see TDDFT absorption simulation in Fig. S1 and S2, ESI†), the maximum molar absorption coefficient of this band was found to be 1.28 105 L mol−1 cm−1 in chloroform (Fig. S3, ESI†). Compared to the CB solution, the absorption peak of AzaTk in o-xylene is blue-shifted. It may be attributed to the different polarity index of both solvents.39 This value lies in the same range as those of other NFA materials, such as ITIC or Y6, and materials made of the same central core.35,40,41 In addition, AzaTk also presents an additional absorption band at ca. 475 nm corresponding to other optical transitions with higher energy. Thanks to TDDFT theoretical calculation, we mainly identified the contribution of the HOMO−1 → LUMO and HOMO−1 → LUMO+1 transitions for this band which correspond to a more localized internal charge transfer between the π-conjugated bridge and the acceptor units (see Fig. S2, ESI†). We highlight that this absorption band is not present in others NFA materials (vide supra) and maximizes the photon collection in this part of the visible spectrum. Then, once deposited by spin coating from o-xylene and chlorobenzene solutions, a bathochromic shift of respectively 66 and 56 nm is observed when compared to the spectra in solution. No significant difference between both films was observed, leading to a similar bandgap (1.55 eV). Also, we do not observe any shoulder peak corresponding to aggregation generally observed for other NFAs. It could come from the hindered 3D structure of AzaTk inhibiting crystallization or aggregation in thin films.42 In addition, no significant differences were observed after a 10 minutes annealing process at 100 °C was carried out.
To look deeper into the electronic properties of AzaTk, we analyzed the molecule's energy levels through cyclic voltammetry experiments and DFT calculation (Fig. 2). The measurements were carried out in dichloromethane with Ag/AgNO3 as a reference electrode and Fc/Fc+ couple as an internal reference. The highest occupied molecular orbital (HOMO) and the lowest unoccupied molecular orbital (LUMO) were determined respectively from the onset oxidation and reduction potentials (see Fig. S4, ESI†). In oxidation, a first reversible oxidation followed by a quasi-reversible peak was observed. In reduction, an irreversible reduction was measured, leading to the decomposition of the material. AzaTk shows HOMO and LUMO levels located at −5.3 and −4.2 eV, respectively, versus the vacuum level. In parallel, DFT theoretical calculations were carried out, giving calculated HOMO at −5.5 eV and LUMO at −3.5 eV. In the ground state, the electron density is mainly localized on the aza-triangulene core with a slight extension to the lateral thiophenes due to the low dihedral angle (20°) observed in the crystal structure. For the LUMO localization, the electron density is shifted to the accepting unit and distributed only over the two branches.
This spatial repartition has been observed with other star shape structures. It is often considered as degenerated energy levels (LUMO and LUMO+1) due to the splitting of the ICT transition from the central core to the three branches (see ESI†).26,31
In a second approach to evaluate the vertical transport capacity of both materials involved in bulk heterojunctions, we used a Space-Charge-Limited Current (SCLC) protocol to extract the mobility from I–V curves of hole-only and electron-only devices (see experimental part). Bulk heterojunctions were realized with the same procedure used in photovoltaic devices (vide infra) by mixing the AzaTk molecule with the PTB7-Th donor polymer with a 1
:
1 weight ratio in CB and o-xylene. I–V curves were fitted in the SCLC region considering a field-dependence of the mobility. Hole (μh) and electron (μe) mobility values obtained for PTB7-Th:AzaTk BHJ layers as a function of solvent are summarized in Table S2 (ESI†). Fig. S8 (ESI†) shows representative dark current and fitting curves. Based on hole-only devices, the hole mobility is slightly higher for CB with average values of 8 × 10−4vs. 3.1 × 10−4 cm2 V−1 s−1 for o-xylene, suggesting a morphological influence of the PTB7-Th chains arrangement in BHJs. For both solvents, the electron mobility in PTB7-Th:AzaTk blended films is lower with average values of 6.5 × 10−5 and 1.9 × 10−6 cm2 V−1 s−1 for CB and o-xylene, respectively. However, this result indicates that despite the presence of polymer chains surrounding the AzaTk domains, the electron transport pathways persist throughout the entire volume of the layer. Additionally, the electron mobility of blends processed from o-xylene is clearly lower leading to a more unbalanced hole and electron mobility that increases the build-up of space charges and, hence, may, increase charge recombination. (vide infra)
:
A ratio of 1
:
1 in a total concentration of 20 mg mL−1 in 97% CB/3% CN. The current density–voltage (J–V) curves are shown in Fig. 3 and the photovoltaic parameters are summarized in Table 1. Slightly better performances were obtained with chlorobenzene due to a better FF. The highest efficiency was obtained for the inverted configuration using chlorobenzene solution with a PCE of 6.46% and a Jsc of 14.09 mA cm2. Remarkably, Voc remains identical, independent of the solvent used, with a value of 0.78 V. For the blend processed from o-xylene solution, the PCE drops to 6.27% despite a higher Jsc. These PCE values are quite comparable and clearly lower compared to the PCE of 8.7% of the reference cells based on PTB7-Th:ITIC-Th. The loss in performance compared to the ITIC-Th based devices can be correlated to the narrower spectral absorption range in the PTB7-Th:AzaTk mixture compared to PTB7-Th:ITIC-Th. The lower absorption leads to a lower Jsc. The poorer FFs can be explained by the lower electron mobility of AzaTk acceptor inside the blend leading to unbalanced charge extraction.
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| Fig. 3 Absorption spectra and I–V curves of PTB7-Th:AzaTk blend film deposited from o-xylene and chlorobenzene solutions. | ||
| V OC (V) | J SC (mA cm−2) | FF (%) | PCE (%) | μ hole(SCLC) (cm2 V−1 s−1) | μ electron(SCLC) (cm2 V−1 s−1) | |
|---|---|---|---|---|---|---|
| PTB7-Th:AzaTk | 0.78 ± 0.002 | 14.43 ± 0.22 | 55.43 ± 0.31 | 6.27 ± 0.07 | 3.10 × 10−4 | 1.89 × 10−6 |
| o-Xylene | ||||||
| PTB7-Th:AzaTk | 0.78 ± 0.002 | 14.09 ± 0.09 | 58.33 ± 1.00 | 6.46 ± 0.06 | 8.01 × 10−4 | 6.54 × 10−5 |
| Chlorobenzene | ||||||
| PTB7-Th:ITIC-Th | 0.79 ± 0.002 | 16.65 ± 0.11 | 59.92 ± 1.4 | 8.70 ± 0.26 | — | — |
| Chlorobenzene |
The EQE spectra of both devices show an identical profile of photoconversion efficiency in the whole range from 300 to 900 nm matching well the absorption of PTB7-Th:AzaTk blend films (see Fig. S9, ESI†). This indicates that in both cases PTB7-Th and AzaTk contribute identically to the photocurrent generation.
:
1 proceed from o-xylene and CB solutions in Fig. 4(b). The corresponding 2D-GIXRD patterns are provided in Fig. S11 (ESI†). Both diffraction scans show the in-plane (100) reflection and the broad out-of-plane (010) reflection of PTB7-Th, which indicates the typical face-on orientation of PTB7-Th crystals (the scattering of the corresponding neat PTB7-Th film is shown in Fig. S12, ESI†).45 However, there are no additional peaks in the blend diffraction patterns that can be attributed to AzaTk molecules pointing towards a lack of order of the new acceptor in the blend, while the preferential arrangement of PTB7-Th polymer chains in a thin layer is not modified. However, the position of the peak (100) corresponding to the lamellar packing of PTB7-Th changes slightly from 0.256 Å−1 (d = 24.53 nm) for the neat polymer film to 0.28 Å−1 (d = 22.42 nm) and 0.278 Å−1 (d = 22.58 nm) for PTB7-Th:AzaTk films proceed from o-xylene and CB, respectively. Smaller lamellar packing distances in blends highlight an improved molecular packing of PTB7-Th due to the presence of acceptor molecules. This favorable arrangement of PTB7-Th chains could explain the higher hole mobility observed in blends. The crystal coherence length (CCL) was estimated from the full width half maxima (FWHM) of peaks by using the Scherrer equation (eqn (1) in ESI†).46 CCL is calculated to be between 0.82 and 0.85 nm for the neat PTB7-Th film and PTB7-Th:AzaTk blend proceed from o-xylene, and it increases to 1.3 nm for PTB7-Th:AzaTk blend proceed from CB. The π–π stacking peak (010) of PTB7-Th is shown at q = 1.55 Å−1 (d = 0.405 nm) in Fig. S12 (ESI†) and goes to q = 1.605 Å−1 (d = 0.391 nm) and q = 1.701 Å−1 (d = 0.369 nm) for PTB7-Th:AzaTk films proceed from o-xylene and CB, respectively (Fig. 4b). This confirms that the molecular packing of PTB7-Th is much denser in blended films processed with CB. The vertical π–π stacking is well-known to promote charge transport between anode and cathode of solar cells and corroborates the higher hole mobility values observed by SCLC for blends using CB. A slight increase in device performances, particularly the FF, is subsequently observed.
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| Fig. 4 AFM images (a) and (b) 2D-GIXRD profiles in out of plane and in plane of line cuts of PTB7-Th:AzaTk blend films from o-xylene and chlorobenzene solutions. | ||
The resulting Nyquist spectra were fitted using the equivalent circuit included as inset in Fig. 5(a).47,48,52,53 In this circuit, RS accounts for the series resistance of the system, Rtrans and Rrec are the transport and recombination resistances, respectively, C is the device dielectric capacitor and CPE is a constant phase element acting as chemical capacitor produced by photogenerated charge accumulation.54 The values of the other elements included in the equivalent circuit as a function of the applied voltage can be observed in Fig. S13 (ESI†).
The resulting resistances and capacitances can be used to determine the recombination lifetime or average charge carrier lifetime (τrec) can be calculated using the following expression49,55
| τrec = Rrec·Cchemical | (1) |
Similarly, the electron diffusion transit time (τd) can be calculated using the equation below49,51
| τtrans = Rtrans·Cd | (2) |
By applying eqn (1) and (2) to the corresponding resistances and capacitances, the recombination lifetime and the electron diffusion transit time were extracted and presented in Fig. 5(b and c).
Attending to Fig. 5(b), both devices show similar recombination lifetimes, which is in agreement with the equal values of the VOC for both kinds of devices. On the other hand, in panel (c) it can be observed how the electronic transport is significantly faster, which can explain the higher JSC produced by the o-xylene based device limiting its charge collection efficiency.56,57 This suggests that the charge collection efficiency of these devices is limited by the transport properties rather than by recombination kinetics.58
We found that by-products similar to those reported for ITIC are formed.60AzaTk contains fluorinated end-groups as previously observed on other NFA molecules BITIC-C8F4 and BITIC-PhC6F4, and the presence of fluorine substituents seems to have a positive effect on the intrinsic stability of the NFAs.8
In the case of the photo-oxidation (Fig. 6(b)), degradation is much faster and the AzaTk film withstands only 56 h of illumination before degrading completely. Compared with ITIC, AzaTk retains, however, more than 75% of the initial absorbance after 10 h, while ITIC films lose 50% of its initial absorption indicating a superior stability against photo-oxidation. Compared to AzaTk, the absorption maxima of the degraded product is blue-shifted by 140 nm (0.11 eV) which is accounted by the breaking of the conjugated backbone between the aza-triangulene core and the dicyanomethylene accepting group. Also, the 1H NMR spectrum of the degradation product features an sp3 singlet around 4.5 ppm which is in the same range as the ITIC-4F degradation product observed by Perepichka group.
To finish, we measured the cells 3 month (90 days) after their fabrication. We stored them at ambient light under inert atmosphere and observed a slight loss of efficiency of 1–3% for o-xylene processed devices but almost 20% loss with the chlorobenzene-processed active layer. This observation highlights another benefit of using o-xylene instead of chlorobenzene for the deposition of the active layers.
Interestingly, AzaTk shows better photochemical stability than the reference ITIC making star-shape molecules potential candidates for the fabrication of solar cells as cast and without halogenated solvents. Degradation mechanism was confirmed and this result tends to indicate that the protection of the β-position of the lateral thiophene is essential to improve the photostability of next generation NFAs. Further investigations will take account of this behaviour for the design of NFA molecules.
We demonstrated with this work that star-shape molecules based on aza-triangulene core can be used as NFA deposited from more industrial friendly solvents, without post-treatment with the same level of performance as classical procedure.
Footnote |
| † Electronic supplementary information (ESI) available. CCDC 2226762, 2226763 and 2226764. For ESI and crystallographic data in CIF or other electronic format see DOI: https://doi.org/10.1039/d2tc05424h |
| This journal is © The Royal Society of Chemistry 2023 |