Fluoride passivation of ZnO electron transport layers for efficient PbSe colloidal quantum dot photovoltaics
Received date: 17 Jul 2023
Accepted date: 08 Sep 2023
Published date: 15 Sep 2023
Copyright
Lead selenide (PbSe) colloidal quantum dots (CQDs) are suitable for the development of the next-generation of photovoltaics (PVs) because of efficient multiple-exciton generation and strong charge coupling ability. To date, the reported high-efficient PbSe CQD PVs use spin-coated zinc oxide (ZnO) as the electron transport layer (ETL). However, it is found that the surface defects of ZnO present a difficulty in completion of passivation, and this impedes the continuous progress of devices. To address this disadvantage, fluoride (F) anions are employed for the surface passivation of ZnO through a chemical bath deposition method (CBD). The F-passivated ZnO ETL possesses decreased densities of oxygen vacancy and a favorable band alignment. Benefiting from these improvements, PbSe CQD PVs report an efficiency of 10.04%, comparatively 9.4% higher than that of devices using sol-gel (SG) ZnO as ETL. We are optimistic that this interface passivation strategy has great potential in the development of solution-processed CQD optoelectronic devices.
Key words: Zinc oxide; Surface passivation; Band alignment; Quantum-dot solar cells
Jungang He , You Ge , Ya Wang , Mohan Yuan , Hang Xia , Xingchen Zhang , Xiao Chen , Xia Wang , Xianchang Zhou , Kanghua Li , Chao Chen , Jiang Tang . Fluoride passivation of ZnO electron transport layers for efficient PbSe colloidal quantum dot photovoltaics[J]. Frontiers of Optoelectronics, 2023 , 16(3) : 28 . DOI: 10.1007/s12200-023-00082-3
1 |
Yang, J., Hu, H., Lv, Y., Yuan, M., Wang, B., He, Z., Chen, S., Wang, Y., Hu, Z., Yu, M., Zhang, X., He, J., Zhang, J., Liu, H., Hsu, H.-Y., Tang, J., Song, H., Lan, X.: Ligand-engineered HgTe colloidal quantum dot solids for infrared photodetectors. Nano Lett 22(8), 3465–3472 (2022)
|
2 |
Liu, J., Liu, P., Chen, D., Shi, T., Qu, X., Chen, L., Wu, T., Ke, J., Xiong, K., Li, M., Song, H., Wei, W., Cao, J., Zhang, J., Gao, L., Tang, J.: A near-infrared colloidal quantum dot imager with monolithically integrated readout circuitry. Nat. Electron. 5(7), 443–451 (2022)
|
3 |
Ahmad, W., He, J., Liu, Z., Xu, K., Chen, Z., Yang, X., Li, D., Xia, Y., Zhang, J., Chen, C.: Lead selenide (PbSe) colloidal quantum dot solar cells with >10% efficiency. Adv. Mater 31(33), 1900593 (2019)
|
4 |
Yuan, M., Hu, H., Wang, Y., Xia, H., Zhang, X., Wang, B., He, Z., Yu, M., Tan, Y., Shi, Z., Li, K., Yang, X., Yang, J., Li, M., Chen, X., Hu, L., Peng, X., He, J., Chen, C., Lan, X., Tang, J.: Cation-exchange enables in situ preparation of PbSe quantum dot ink for high performance solar cells. Small 18(48), 2205356 (2022)
|
5 |
Gao, L., Quan, L.N., García de Arquer, F.P., Zhao, Y., Munir, R., Proppe, A., Quintero-Bermudez, R., Zou, C., Yang, Z., Saidaminov, M.I., Voznyy, O., Kinge, S., Lu, Z., Kelley, S.O., Amassian, A., Tang, J., Sargent, E.H.: Efficient near-infrared light-emitting diodes based on quantum dots in layered perovskite. Nat. Photonics 14(4), 227–233 (2020)
|
6 |
Deng, Y., Lin, X., Fang, W., Di, D., Wang, L., Friend, R.H., Peng, X., Jin, Y.: Deciphering exciton-generation processes in quantum-dot electroluminescence. Nat. Commun. 11(1), 2309 (2020)
|
7 |
Zhu, M., Liu, X., Liu, S., Chen, C., He, J., Liu, W., Yang, J., Gao, L., Niu, G., Tang, J., Zhang, J.: Efficient PbSe colloidal quantum dot solar cells using SnO2 as a buffer layer. ACS Appl. Mater. Inter 12(2), 2566–2571 (2020)
|
8 |
Yuan, M., Wang, X., Chen, X., He, J., Li, K., Song, B., Hu, H., Gao, L., Lan, X., Chen, C., Tang, J.: Phase-transfer exchange lead chalcogenide colloidal quantum dots: Ink Preparation, film Assembly, and solar cell construction. Small 18(2), 2102340 (2022)
|
9 |
Midgett, A.G., Luther, J.M., Stewart, J.T., Smith, D.K., Padilha, L.A., Klimov, V.I., Nozik, A.J., Beard, M.C.: Size and composition dependent multiple exciton generation efficiency in PbS, PbSe, and PbSxSe1-x alloyed quantum dots. Nano Lett. 13(7), 3078–3085 (2013)
|
10 |
Talapin, D.V., Murray, C.B.: PbSe nanocrystal solids for n-and p-channel thin film field-effect transistors. Science 310(5745), 86–89 (2005)
|
11 |
Semonin, O.E., Luther, J.M., Choi, S., Chen, H.-Y., Gao, J., Nozik, A.J., Beard, M.C.: Peak external photocurrent quantum efficiency exceeding 100% via MEG in a quantum dot solar cell. Science 334(6062), 1530–1533 (2011)
|
12 |
Davis, N.J., Böhm, M.L., Tabachnyk, M., Wisnivesky-Rocca-Rivarola, F., Jellicoe, T.C., Ducati, C., Ehrler, B., Greenham, N.C.: Multiple-exciton generation in lead selenide nanorod solar cells with external quantum efficiencies exceeding 120%. Nat. Commun. 6, 8259–8265 (2015)
|
13 |
Zhang, J., Gao, J., Church, C.P., Miller, E.M., Luther, J.M., Klimov, V.I., Beard, M.C.: PbSe quantum dot solar cells with more than 6% efficiency fabricated in ambient atmosphere. Nano Lett. 14(10), 6010–6015 (2014)
|
14 |
Milan, S., Koposov, A.Y., Mcguire, J.A., Schulze, R.K., Olexandr, T., Pietryga, J.M., Klimov, V.I.: Effect of air exposure on surface properties, electronic structure, and carrier relaxation in PbSe nanocrystals. ACS Nano 4(4), 2021–2034 (2010)
|
15 |
Xia, Y., Chen, W., Zhang, P., Liu, S., Wang, K., Yang, X., Tang, H., Lian, L., He, J., Liu, X., Liang, G., Tan, M., Gao, L., Liu, H., Song, H., Zhang, D., Gao, J., Wang, K., Lan, X., Zhang, X., Müller-Buschbaum, P., Tang, J., Zhang, J.: Facet control for trapstate suppression in colloidal quantum dot solids. Adv. Funct. Mater. 30(22), 2000594 (2020)
|
16 |
Xia, Y., Liu, S., Wang, K., Yang, X., Lian, L., Zhang, Z., He, J., Liang, G., Wang, S., Tan, M., Song, H., Zhang, D., Gao, J., Tang, J., Beard, M.C., Zhang, J.: Cation-exchange synthesis of highly monodisperse PbS quantum dots from ZnS nanorods for efficient infrared solar cells. Adv. Funct. Mater. 30(4), 1907379 (2020)
|
17 |
Liu, Y., Li, F., Shi, G., Liu, Z., Lin, X., Shi, Y., Chen, Y., Meng, X., Lv, Y., Deng, W., Pan, X., Ma, W.: PbSe quantum dot solar cells based on directly synthesized semiconductive inks. ACS Energy Lett. 5(12), 3797–3803 (2020)
|
18 |
Liu, M., Voznyy, O., Sabatini, R., De Arquer, F.P.G., Munir, R., Balawi, A.H., Lan, X., Fan, F., Walters, G., Kirmani, A.R., Hoogland, S., Laquai, F., Amassian, A., Sargent, E.H.: Hybrid organic-inorganic inks flatten the energy landscape in colloidal quantum dot solids. Nat. Mater 16(2), 258–263 (2017)
|
19 |
Liu, M., Chen, Y., Tan, C.-S., Quintero-Bermudez, R., Proppe, A.H., Munir, R., Tan, H., Voznyy, O., Scheffel, B., Walters, G., Kam, A.P.T., Bin, S., Choi, M.J., Hoogland, S., Amassian, A., Kelley, S.O., Arquer, F.P.G.D., Sargent, E.H.: Lattice anchoring stabilizes solution-processed semiconductors. Nature 570(7759), 96–101 (2019)
|
20 |
Ning, Z., Ren, Y., Hoogland, S., Voznyy, O., Levina, L., Stadler, P., Lan, X., Zhitomirsky, D., Sargent, E.H.: All-inorganic colloidal quantum dot photovoltaics employing solution-phase halide passivation. Adv. Mater 24(47), 6295–6299 (2012)
|
21 |
Kim, H.I., Baek, S.-W., Cheon, H.J., Ryu, S.U., Lee, S., Choi, M.-J., Choi, K., Biondi, M., Hoogland, S., de Arquer, F.P.G., Kwon, S.-K., Kim, Y.-H., Park, T., Sargent, E.H.: A tuned alternating D-A copolymer hole-transport layer enables colloidal quantum dot solar cells with superior fill factor and efficiency. Adv. Mater 32(48), 2004985 (2020)
|
22 |
Ding, C., Wang, D., Liu, D., Li, H., Li, Y., Hayase, S., Sogabe, T., Masuda, T., Zhou, Y., Yao, Y., Zou, Z., Wang, R., Shen, Q.: Over 15% efficiency PbS quantum-dot solar cells by synergistic effects of three interface engineering: reducing nonradiative recombination and balancing charge carrier extraction. Adv. Energy. Mater 12(35), 2201676 (2022)
|
23 |
Azmi, R., Seo, G., Ahn, T.K., Jang, S.-Y.: High-efficiency air-stable colloidal quantum dot solar cells based on a potassium-doped ZnO electron-accepting layer. ACS Appl. Mater. Inter 10(41), 35244–35249 (2018)
|
24 |
Woo, H.K., Kang, M.S., Park, T., Bang, J., Jeon, S., Lee, W.S., Ahn, J., Cho, G., Ko, D.-K., Kim, Y., Ha, D.-H., Oh, S.J.: Colloidal-annealing of ZnO nanoparticles to passivate traps and improve charge extraction in colloidal quantum dot solar cells. Nanoscale 11(37), 17498–17505 (2019)
|
25 |
Yang, F., Xu, Y., Gu, M., Zhou, S., Wang, Y., Lu, K., Liu, Z., Ling, X., Zhu, Z., Chen, J., Wu, Z., Zhang, Y., Xue, Y., Li, F., Yuan, J., Ma, W.: Synthesis of cesium-doped ZnO nanoparticles as an electron extraction layer for efficient PbS colloidal quantum dot solar cells. J. Mater. Chem. A 6(36), 17688–17697 (2018)
|
26 |
Choi, J., Jo, J.W., de Arquer, F.P.G., Zhao, Y.-B., Sun, B., Kim, J., Choi, M.-J., Baek, S.-W., Proppe, A.H., Seifitokaldani, A., Nam, D.-H., Li, P., Ouellette, O., Kim, Y., Voznyy, O., Hoogland, S., Kelley, S.O., Lu, Z.-H., Sargent, E.H.: Activated electron-transport layers for infrared quantum dot optoelectronics. Adv. Mater 30(29), 1801720 (2018)
|
27 |
Choi, J., Kim, Y., Jo, J.W., Kim, J., Sun, B., Walters, G., García de Arquer, F.P., Quintero-Bermudez, R., Li, Y., Tan, C.S., Quan, L.N., Kam, A.P.T., Hoogland, S., Lu, Z., Voznyy, O., Sargent, E.H.: Chloride passivation of ZnO electrodes improves charge extraction in colloidal quantum dot photovoltaics. Adv. Mater 29(33), 1702350 (2017)
|
28 |
Della Gaspera, E., Kennedy, D.F., van Embden, J., Chesman, A.S.R., Gengenbach, T.R., Weber, K., Jasieniak, J.J.: Flash-assisted processing of highly conductive Zinc Oxide electrodes from water. Adv. Funct. Mater. 25(47), 7263–7271 (2015)
|
29 |
Zhang, Y., Liu, C., Liu, J., Xiong, J., Liu, J., Zhang, K., Liu, Y., Peng, M., Yu, A., Zhang, A., Zhang, Y., Wang, Z., Zhai, J., Wang, Z.L.: Lattice Strain induced remarkable enhancement in piezoelectric performance of ZnO-based flexible nanogenerators. ACS Appl. Mater. Inter 8(2), 1381–1387 (2016)
|
30 |
Che, L., Song, J., Yang, J., Chen, X., Li, J., Zhang, N., Yang, S., Wang, Y.: Fluorine, chlorine, and gallium co-doped zinc oxide transparent conductive films fabricated using the sol-gel spin method. J. Materiomics 9(4), 745–753 (2023)
|
31 |
Chen, X., Liu, K., Wang, X., Li, B., Zhang, Z., Xie, X., Shen, D.: Performance enhancement of a ZnMgO film UV photodetector by HF solution treatment. J. Mater. Chem. C 5(40), 10645–10651 (2017)
|
32 |
Shen, X., Kang, J., Niu, W., Wang, M., Zhang, Q., Wang, Y.: Impact of hierarchical pore structure on the catalytic performances of MFI zeolites modified by ZnO for the conversion of methanol to aromatics. Catal. Sci. Technol. 7(16), 3598–3612 (2017)
|
33 |
Xia, J., Mao, D., Zhang, B., Chen, Q., Zhang, Y., Tang, Y.: Catalytic properties of fluorinated alumina for the production of dimethyl ether. Catal. Commun. 7(6), 362–366 (2006)
|
34 |
Liu, K., Marwat, M.A., Ma, W., Wei, T., Li, M., Fan, P., Lu, D., Tian, Y., Samart, C., Ye, B., He, J., Zhang, H.: Enhanced energy storage performance of nanocomposites filled with paraelectric ceramic nanoparticles by weakening the electric field distortion. Ceram. Int 46(13), 21149–21155 (2020)
|
35 |
Li, K., Lu, Y., Yang, X., Fu, L., He, J., Lin, X., Zheng, J., Lu, S., Chen, C., Tang, J.: Filter-free self-power CdSe/Sb2(S1–x, Sex)3 nearinfrared narrowband detection and imaging. InfoMat 3(10), 1145–1153 (2021)
|
36 |
Chen, C., Liu, X., Li, K., Lu, S., Wang, S., Li, S., Lu, Y., He, J., Zheng, J., Lin, X., Tang, J.: High-efficient Sb2Se3 solar cell using ZnxCd1-xS n-type layer. Appl. Phys. Lett. 118(17), 172103 (2021)
|
37 |
He, J., Yuan, M., Wang, X., Chen, X., Peng, X., Hu, L., Zhao, X., Liu, J., Li, J., Li, K., Chen, C., Tang, J.: Extrinsic photoresponse of Ag doped MAPbBr3 perovskite crystals. Appl. Surf. Sci 614, 156230 (2023)
|
38 |
Yang, X., Hu, L., Deng, H., Qiao, K., Hu, C., Liu, Z., Yuan, S., Khan, J., Li, D., Tang, J., Song, H., Cheng, C.: Improving the performance of PbS quantum dot solar cells by optimizing ZnO window layer. Nano-Micro Lett. 9(2), 24 (2017)
|
/
〈 |
|
〉 |