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Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †

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Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †. / Wang, Ran; Altujjar, Amal; Zibouche, Nourdine et al.
In: Energy and Environmental Science, Vol. 16, No. 6, 01.06.2023, p. 2646-2657.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Wang, R, Altujjar, A, Zibouche, N, Wang, X, Spencer, BF, Jia, Z, Thomas, AG, Mokhtar, MZ, Cai, R, Haigh, SJ, Saunders, JM, Islam, MS & Saunders, BR 2023, 'Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †', Energy and Environmental Science, vol. 16, no. 6, pp. 2646-2657. https://doi.org/10.1039/d3ee00247k

APA

Wang, R., Altujjar, A., Zibouche, N., Wang, X., Spencer, B. F., Jia, Z., Thomas, A. G., Mokhtar, M. Z., Cai, R., Haigh, S. J., Saunders, J. M., Islam, M. S., & Saunders, B. R. (2023). Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †. Energy and Environmental Science, 16(6), 2646-2657. https://doi.org/10.1039/d3ee00247k

Vancouver

Wang R, Altujjar A, Zibouche N, Wang X, Spencer BF, Jia Z et al. Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †. Energy and Environmental Science. 2023 Jun 1;16(6):2646-2657. Epub 2023 May 11. doi: 10.1039/d3ee00247k

Author

Wang, Ran ; Altujjar, Amal ; Zibouche, Nourdine et al. / Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †. In: Energy and Environmental Science. 2023 ; Vol. 16, No. 6. pp. 2646-2657.

Bibtex

@article{9fe6030fd6b44d15ad5f16881f93d618,
title = "Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †",
abstract = "Perovskite solar cells (PSCs) continue to excite the research community due to their excellent power conversion efficiency (PCE) and relative ease of preparation. Additive engineering has played a decisive role in improving PSC performance and stability. In particular, π-conjugated aromatic additives (CAAs) offer key advantages such as high charge transport. However, the roles of hydrophobicity and structure in determining CAA performance as additives are still being established. Here, we investigate the effects of two coumarin additives on the PCE and stability of PSCs based on Cs0.05(FA0.85MA0.15)0.95Pb(I0.85Br0.15)3 perovskite. The CAAs are coumarin methacrylate (CMA) and coumarin hydroxyethyl (CHE) and were added to the precursor perovskite solutions prior to film deposition with CMA being more hydrophobic than CHE. These additives increase the best PCE of 19.15% for the control to 21.14% and 21.28% for the best devices containing CHE and CMA, respectively. The stability of the devices with the additives are far superior to that of the control (CAA-free) system. The time lengths required for the PCE to decrease to 80% of the initial value for CMA- and CHE-containing devices are 98 and 38 days, respectively, compared to only 14 days for the control. The moisture and thermal stabilities of the systems containing CMA are markedly improved compared to those containing CHE and the control. Our results show that the extents of binding to Pb2+ and passivation increase as the coumarin's hydrophobicity increases which decreases recombination. Our findings show that adding CAAs with increasing hydrophobic character to the precursor perovskite solution is useful for achieving high-performance and long-term stable PSCs.",
author = "Ran Wang and Amal Altujjar and Nourdine Zibouche and Xuelian Wang and Spencer, {Ben F.} and Zhenyu Jia and Thomas, {Andrew G.} and Mokhtar, {Muhamad Z.} and Rongsheng Cai and Haigh, {Sarah J.} and Saunders, {Jennifer M.} and Islam, {M. Saiful} and Saunders, {Brian R.}",
year = "2023",
month = jun,
day = "1",
doi = "10.1039/d3ee00247k",
language = "English",
volume = "16",
pages = "2646--2657",
journal = "Energy and Environmental Science",
issn = "1754-5692",
publisher = "The Royal Society of Chemistry",
number = "6",

}

RIS

TY - JOUR

T1 - Improving the efficiency and stability of perovskite solar cells using π-conjugated aromatic additives with differing hydrophobicities †

AU - Wang, Ran

AU - Altujjar, Amal

AU - Zibouche, Nourdine

AU - Wang, Xuelian

AU - Spencer, Ben F.

AU - Jia, Zhenyu

AU - Thomas, Andrew G.

AU - Mokhtar, Muhamad Z.

AU - Cai, Rongsheng

AU - Haigh, Sarah J.

AU - Saunders, Jennifer M.

AU - Islam, M. Saiful

AU - Saunders, Brian R.

PY - 2023/6/1

Y1 - 2023/6/1

N2 - Perovskite solar cells (PSCs) continue to excite the research community due to their excellent power conversion efficiency (PCE) and relative ease of preparation. Additive engineering has played a decisive role in improving PSC performance and stability. In particular, π-conjugated aromatic additives (CAAs) offer key advantages such as high charge transport. However, the roles of hydrophobicity and structure in determining CAA performance as additives are still being established. Here, we investigate the effects of two coumarin additives on the PCE and stability of PSCs based on Cs0.05(FA0.85MA0.15)0.95Pb(I0.85Br0.15)3 perovskite. The CAAs are coumarin methacrylate (CMA) and coumarin hydroxyethyl (CHE) and were added to the precursor perovskite solutions prior to film deposition with CMA being more hydrophobic than CHE. These additives increase the best PCE of 19.15% for the control to 21.14% and 21.28% for the best devices containing CHE and CMA, respectively. The stability of the devices with the additives are far superior to that of the control (CAA-free) system. The time lengths required for the PCE to decrease to 80% of the initial value for CMA- and CHE-containing devices are 98 and 38 days, respectively, compared to only 14 days for the control. The moisture and thermal stabilities of the systems containing CMA are markedly improved compared to those containing CHE and the control. Our results show that the extents of binding to Pb2+ and passivation increase as the coumarin's hydrophobicity increases which decreases recombination. Our findings show that adding CAAs with increasing hydrophobic character to the precursor perovskite solution is useful for achieving high-performance and long-term stable PSCs.

AB - Perovskite solar cells (PSCs) continue to excite the research community due to their excellent power conversion efficiency (PCE) and relative ease of preparation. Additive engineering has played a decisive role in improving PSC performance and stability. In particular, π-conjugated aromatic additives (CAAs) offer key advantages such as high charge transport. However, the roles of hydrophobicity and structure in determining CAA performance as additives are still being established. Here, we investigate the effects of two coumarin additives on the PCE and stability of PSCs based on Cs0.05(FA0.85MA0.15)0.95Pb(I0.85Br0.15)3 perovskite. The CAAs are coumarin methacrylate (CMA) and coumarin hydroxyethyl (CHE) and were added to the precursor perovskite solutions prior to film deposition with CMA being more hydrophobic than CHE. These additives increase the best PCE of 19.15% for the control to 21.14% and 21.28% for the best devices containing CHE and CMA, respectively. The stability of the devices with the additives are far superior to that of the control (CAA-free) system. The time lengths required for the PCE to decrease to 80% of the initial value for CMA- and CHE-containing devices are 98 and 38 days, respectively, compared to only 14 days for the control. The moisture and thermal stabilities of the systems containing CMA are markedly improved compared to those containing CHE and the control. Our results show that the extents of binding to Pb2+ and passivation increase as the coumarin's hydrophobicity increases which decreases recombination. Our findings show that adding CAAs with increasing hydrophobic character to the precursor perovskite solution is useful for achieving high-performance and long-term stable PSCs.

U2 - 10.1039/d3ee00247k

DO - 10.1039/d3ee00247k

M3 - Journal article

VL - 16

SP - 2646

EP - 2657

JO - Energy and Environmental Science

JF - Energy and Environmental Science

SN - 1754-5692

IS - 6

ER -