Enhancing performance of two-step fabricated perovskite solar cells with sulfonium triflate-based additive

Yeeun Kim , Hyunjun Lee , Cheongbeom Lee , Beomjin Kim , Nayoon Kwon , Taewoong Son , Jaehee Lee , Jaegwan Sin , Taejoo Shin , Jungyup Yang , Kyeounghak Kim , Jangwon Seo

EcoMat ›› 2024, Vol. 6 ›› Issue (4) : e12446

PDF
EcoMat ›› 2024, Vol. 6 ›› Issue (4) : e12446 DOI: 10.1002/eom2.12446
RESEARCH ARTICLE

Enhancing performance of two-step fabricated perovskite solar cells with sulfonium triflate-based additive

Author information +
History +
PDF

Abstract

We incorporated triphenylsulfonium triflate (TPST), a sulfonium-based additive consisting of polar triflate and bulky hydrophobic phenyl rings, to the PbI2 precursor solution for preparation of less-defect perovskite film via two-step fabrication. TPST induced localized alterations in the array of the PbI2 structure due to its large size, thereby forming a more discontinuous and coarser surface with a greater number of pinholes and subsequently facilitating more efficient organic–inorganic reactions. As a result, we achieved the production of thick perovskite films with enlarged granules and decreased PbI2 residuals in the two-step fabrication process. Furthermore, TPST facilitated the passivation of bulk film defects by increasing the binding energy with the defects. Consequently, the ITO/SnO2 np-based device and the FTO/CBD SnO2-based device obtained the best PCEs of 23.88% and 24.30%, respectively. Furthermore, the moisture stability of the perovskite was improved by the hydrophobic character of the TPST additive.

Keywords

2 step deposition / additive / perovskite solar cell / sulfonium triflate

Cite this article

Download citation ▾
Yeeun Kim, Hyunjun Lee, Cheongbeom Lee, Beomjin Kim, Nayoon Kwon, Taewoong Son, Jaehee Lee, Jaegwan Sin, Taejoo Shin, Jungyup Yang, Kyeounghak Kim, Jangwon Seo. Enhancing performance of two-step fabricated perovskite solar cells with sulfonium triflate-based additive. EcoMat, 2024, 6(4): e12446 DOI:10.1002/eom2.12446

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Xing G, Mathews N, Sun S, et al. Long-range balanced electron-and hole-transport lengths in organic-inorganic CH3NH3PbI3. Science. 2013;342(6156):344-347.

[2]

Motta C, El-Mellouhi F, Sanvito S. Charge carrier mobility in hybrid halide perovskites. Sci Rep. 2015;5(1):12746.

[3]

Dong Q, Fang Y, Shao Y, et al. Electron-hole diffusion lengths >175 μm in solution-grown CH3NH3PbI3 single crystals. Science. 2015;347(6225):967-970.

[4]

Park N-G. Perovskite solar cells: an emerging photovoltaic technology. Mater Today. 2015;18(2):65-72.

[5]

(NREL) NREL. Best Reasearch-Cell Efficiencies. Accessed October 30, 2023.

[6]

Kim M, Kim G-H, Lee TK, et al. Methylammonium chloride induces intermediate phase stabilization for efficient perovskite solar cells. Joule. 2019;3(9):2179-2192.

[7]

Jeon NJ, Noh JH, Kim YC, Yang WS, Ryu S, Seok SI. Solvent engineering for high-performance inorganic–organic hybrid perovskite solar cells. Nat Mater. 2014;13(9):897-903.

[8]

Zhao P, Kim BJ, Ren X, et al. Antisolvent with an ultrawide processing window for the one-step fabrication of efficient and large-area perovskite solar cells. Adv Mater. 2018;30(49):1802763.

[9]

Wang M, Feng Y, Bian J, Liu H, Shi Y. A comparative study of one-step and two-step approaches for MAPbI3 perovskite layer and its influence on the performance of mesoscopic perovskite solar cell. Chem Phys Lett. 2018;692:44-49.

[10]

Han Y, Xie H, Lim EL, Bi D. Review of two-step method for lead halide perovskite solar cells. Solar RRL. 2022;6(6):2101007.

[11]

Ran C, Gao W, Li N, et al. Facet-dependent control of PbI2 colloids for over 20% efficient perovskite solar cells. ACS Energy Lett. 2018;4(1):358-367.

[12]

Tumen-Ulzii G, Qin C, Klotz D, et al. Detrimental effect of unreacted PbI2 on the long-term stability of perovskite solar cells. Adv Mater. 2020;32(16):1905035.

[13]

Liu F, Dong Q, Wong MK, et al. Is excess PbI2 beneficial for perovskite solar cell performance? Adv Energy Mater. 2016;6(7):1502206.

[14]

Cao X, Li C, Li Y, et al. Enhanced performance of perovskite solar cells by modulating the Lewis acid–base reaction. Nanoscale. 2016;8(47):19804-19810.

[15]

Yang WS, Noh JH, Jeon NJ, et al. High-performance photovoltaic perovskite layers fabricated through intramolecular exchange. Science. 2015;348(6240):1234-1237.

[16]

Wang J, Yuan L, Luo H, et al. Ambient air processed highly oriented perovskite solar cells with efficiency exceeding 23% via amorphous intermediate. Chem Eng J. 2022;446:136968.

[17]

Zhang T, Yang M, Zhao Y, Zhu K. Controllable sequential deposition of planar CH3NH3PbI3 perovskite films via adjustable volume expansion. Nano Lett. 2015;15(6):3959-3963.

[18]

Li G, Zhang T, Zhao Y. Hydrochloric acid accelerated formation of planar CH3NH3PbI3 perovskite with high humidity tolerance. J Mater Chem A. 2015;3(39):19674-19678.

[19]

Qin Z, Chen Y, Wang X, et al. Zwitterion-functionalized SnO2 substrate induced sequential deposition of black-phase FAPbI3 with rearranged PbI2 residue. Adv Mater. 2022;34(32):2203143.

[20]

Li Y, Sun X, Li Y, Deng F, Li S, Tao X. Polymer-assisted heterogeneous lead iodide in a two-step process: fabrication of efficient and stable perovskite solar cells. Solar RRL. 2023;7(10):2201132.

[21]

He J, Sheng W, Yang J, et al. Omnidirectional diffusion of organic amine salts assisted by ordered arrays in porous lead iodide for two-step deposited large-area perovskite solar cells. Energy Environ Sci. 2023;16(2):629-640.

[22]

Shao W, Wang H, Ye F, et al. Modulation of nucleation and crystallization in PbI2 films promoting preferential perovskite orientation growth for efficient solar cells. Energy Environ Sci. 2023;16(1):252-264.

[23]

Du Y, Wang Y, Wu J, et al. NaHCO3-induced porous PbI2 enabling efficient and stable perovskite solar cells. InfoMat. 2023;5(6):e12431.

[24]

Zeng G, Liu G, Li X. Hexamethylphosphoramide-assisted structure and morphology regulation of a PbI2 film for air-processed efficient perovskite solar cells via a two-step deposition method. ACS Sustain Chem Eng. 2023;11(20):7664-7672.

[25]

Kim YY, Park EY, Yang T-Y, et al. Fast two-step deposition of perovskite via mediator extraction treatment for large-area, high-performance perovskite solar cells. J Mater Chem A. 2018;6(26):12447-12454.

[26]

Wang B, Cheng Q, Huang G, et al. Sulfonium-cations-assisted intermediate engineering for quasi-2D perovskite solar cells. Adv Mater. 2023;35(5):2207345.

[27]

Ge C, Lu J-F, Singh M, et al. Mixed dimensional perovskites heterostructure for highly efficient and stable perovskite solar cells. Solar RRL. 2022;6(4):2100879.

[28]

Rahman MM, Ahmed A, Ge C-y, et al. Trimethylsulfonium lead triiodide (TMSPbI3) for moisture-stable perovskite solar cells. Sustain Energy Fuel. 2021;5(17):4327-4335.

[29]

Kim B, Kim M, Lee JH, Seok SI. Enhanced moisture stability by butyldimethylsulfonium cation in perovskite solar cells. Adv Sci. 2020;7(3):1901840.

[30]

Lee SJ, Heo JH, Im SH. Large-scale synthesis of uniform PbI2 (DMSO) complex powder by solvent extraction method for efficient metal halide perovskite solar cells. ACS Appl Mater Interfaces. 2020;12(7):8233-8239.

[31]

Chen H, Ding X, Xu P, et al. Forming intermediate phase on the surface of PbI2 precursor films by short-time DMSO treatment for high-efficiency planar perovskite solar cells via vapor-assisted solution process. ACS Appl Mater Interfaces. 2018;10(2):1781-1791.

[32]

Liu Q, Ma Z, Li Y, et al. Heterogeneous lead iodide obtains perovskite solar cells with efficiency of 24.27%. Chem Eng J. 2022;448:137676.

[33]

Sun X, Li D, Zhao L, et al. (111)-dominated perovskite films by antisolvent engineering. Adv Mater. 2023;35(28):2301115.

[34]

Duan L, Li L, Zhao Y, et al. In-situ interfacial passivation for stable perovskite solar cells. Front Mater. 2019;6:200.

[35]

Gao L, Huang S, Chen L, et al. Excellent stability of perovskite solar cells by passivation engineering. Solar RRL. 2018;2(8):1800088.

[36]

Xu T, Xiang W, Yang J, et al. Interface modification for efficient and stable inverted inorganic perovskite solar cells. Adv Mater. 2023;35(31):2303346.

[37]

Ko S-G, Ryu G-I, Kim B, et al. Effects of thiourea on the perovskite crystallization for fully printable solar cells. Sol Energy Mater Sol Cells. 2019;196:105-110.

[38]

Yi J, Zhuang J, Liu X, et al. Triphenylamine hydrophobic surface prepared by low-temperature solution deposition for stable and high-efficiency SnO2 planar perovskite solar cells. J Alloys Compd. 2020;830:154710.

[39]

Hassan Y, Park JH, Crawford ML, et al. Ligand-engineered bandgap stability in mixed-halide perovskite LEDs. Nature. 2021;591(7848):72-77.

[40]

Jindal S, Giripunje SM. An insight into electronic and optical properties of multilayer graphene quantum dots synthesized by hydrothermal approach. Synth Met. 2018;239:36-42.

[41]

de Quilettes DW, Vorpahl SM, Stranks SD, et al. Impact of microstructure on local carrier lifetime in perovskite solar cells. Science. 2015;348(6235):683-686.

[42]

De Marco N, Zhou H, Chen Q, et al. Guanidinium: a route to enhanced carrier lifetime and open-circuit voltage in hybrid perovskite solar cells. Nano Lett. 2016;16(2):1009-1016.

[43]

Li M, Li B, Cao G, Tian J. Monolithic MAPbI3 films for high-efficiency solar cells via coordination and a heat assisted process. J Mater Chem A. 2017;5(40):21313-21319.

[44]

Thongprong N, Supasai T, Li Y, Tang I-M, Rujisamphan N. Insights into recombination processes from light intensity–dependent open-circuit voltages and ideality factors in planar perovskite solar cells. Energ Technol. 2020;8(5):1901196.

[45]

Liu Z, Hu J, Jiao H, et al. Chemical reduction of intrinsic defects in thicker heterojunction planar perovskite solar cells. Adv Mater. 2017;29(23):1606774.

[46]

Ryu S, Nguyen DC, Ha NY, et al. Light intensity-dependent variation in defect contributions to charge transport and recombination in a planar MAPbI3 perovskite solar cell. Sci Rep. 2019;9(1):19846.

[47]

Li B, Li Y, Zheng C, Gao D, Huang W. Advancements in the stability of perovskite solar cells: degradation mechanisms and improvement approaches. RSC Adv. 2016;6(44):38079-38091.

[48]

Kim Y, Kim G, Park EY, et al. Alkylammonium bis (trifluoromethylsulfonyl) imide as a dopant in the hole-transporting layer for efficient and stable perovskite solar cells. Energ Environ Sci. 2023;16(5):2226-2238.

[49]

Ni Z, Jiao H, Fei C, et al. Evolution of defects during the degradation of metal halide perovskite solar cells under reverse bias and illumination. Nat Energy. 2022;7(1):65-73.

[50]

Ni Z, Bao C, Liu Y, et al. Resolving spatial and energetic distributions of trap states in metal halide perovskite solar cells. Science. 2020;367(6484):1352-1358.

[51]

Kresse G, Furthmüller J. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. Phys Rev B. 1996;54(16):11169-11186.

[52]

Perdew JP, Burke K, Ernzerhof M. Generalized gradient approximation made simple. Phys Rev Lett. 1996;77(18):3865-3868.

[53]

Monkhorst HJ, Pack JD. Special points for Brillouin-zone integrations. Phys Rev B. 1976;13(12):5188-5192.

[54]

Grimme S, Antony J, Ehrlich S, Krieg H. A consistent and accurate ab initio parametrization of density functional dispersion correction (DFT-D) for the 94 elements H-Pu. J Chem Phys. 2010;132(15):154104.

[55]

Grimme S, Ehrlich S, Goerigk L. Effect of the damping function in dispersion corrected density functional theory. J Comput Chem. 2011;32(7):1456-1465.

RIGHTS & PERMISSIONS

2024 The Authors. EcoMat published by The Hong Kong Polytechnic University and John Wiley & Sons Australia, Ltd.

AI Summary AI Mindmap
PDF

397

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/