Additive-assisted perovskite crystallization on industrial TOPCon silicon for tandem solar cells with improved efficiency – Nature

Thank you for visiting nature.com. You are using a browser version with limited support for CSS. To obtain the best experience, we recommend you use a more up to date browser (or turn off compatibility mode in Internet Explorer). In the meantime, to ensure continued support, we are displaying the site without styles and JavaScript.
Advertisement
Nature Energy (2026)
Thin silicon wafers used in tunnel oxide passivated contact tandem solar cells have reduced thermal mass and higher thermal conductivity, which accelerate heat transfer during perovskite subcell deposition. This rapid heat transfer induces fast crystallization of the perovskite layer, compromising film quality and tandem performance. Here we introduce 2-mercaptobenzothiazole, which exhibits dual-mode binding with perovskite organic cations, to modulate crystallization dynamics. This approach improves morphological uniformity, eliminates voids and suppresses halide segregation, while reducing non-radiative recombination and lowering the trap-assisted recombination rate from 3.2 × 105 to 4.3 × 104 cm s1. The two-terminal monolithic perovskite/tunnel oxide passivated contact tandem cell achieves a certified stabilized power conversion efficiency of 32.76% and retains 91% of its initial efficiency after 1,700 h of continuous operation. This work uncovers a previously overlooked perovskite crystallization issue on industrial silicon wafers, providing critical insights for integrating perovskite solar cells into mainstream silicon technology.
This is a preview of subscription content, access via your institution
Access Nature and 54 other Nature Portfolio journals
Get Nature+, our best-value online-access subscription
$32.99 / 30 days
cancel any time
Subscribe to this journal
Receive 12 digital issues and online access to articles
$119.00 per year
only $9.92 per issue
Buy this article
USD 39.95
Prices may be subject to local taxes which are calculated during checkout
The data that support the findings of this study are available within the Article and its Supplementary Information.
Photovoltaics Report (Fraunhofer ISE, 2024).
Chunduri, S. Next-gen solar cell technologies & projections. TaiyangNews – All About Solar Power https://taiyangnews.info/technology/next-gen-solar-cell-technologies-projections (2025).
Feldmann, F., Bivour, M., Reichel, C., Hermle, M. & Glunz, S. W. Passivated rear contacts for high-efficiency n-type Si solar cells providing high interface passivation quality and excellent transport characteristics. Sol. Energy Mater. Sol. Cells 120, 270–274 (2014).
Article  Google Scholar 
Yan, D. et al. Polysilicon passivated junctions: the next technology for silicon solar cells?. Joule 5, 811–828 (2021).
Article  Google Scholar 
Deng, S. et al. Mitigating parasitic absorption in Poly-Si contacts for TOPCon solar cells: a comprehensive review. Sol. Energy Mater. Sol. Cells 267, 112704 (2024).
Article  Google Scholar 
Aydin, E. et al. Pathways toward commercial perovskite/silicon tandem photovoltaics. Science 383, eadh3849 (2024).
Article  Google Scholar 
Duan, L. et al. Stability challenges for the commercialization of perovskite–silicon tandem solar cells. Nat. Rev. Mater. 8, 261–281 (2023).
Article  Google Scholar 
Fu, F. et al. Monolithic perovskite-silicon tandem solar cells: from the lab to fab?. Adv. Mater. 34, 2106540 (2022).
Article  Google Scholar 
Trinasolar Unveils i-TOPCon Ultra Technology, with Cell Efficiency of 26.58%. Trina Solar https://static.trinasolar.com/en-apac/resources/newsroom/aptrinasolar-unveils-i-topcon-ultra-technology-cell-efficiency-2658 (2024).
Wagner, P. et al. Bandgap pairing in three-terminal tandem solar cells: from limiting efficiency to voltage-matched device performance. Sol. RRL 8, 2300963 (2024).
Article  Google Scholar 
Liu, J. et al. Perovskite/silicon tandem solar cells with bilayer interface passivation. Nature 635, 596–603 (2024).
Article  Google Scholar 
Ugur, E. et al. Enhanced cation interaction in perovskites for efficient tandem solar cells with silicon. Science 385, 533–538 (2024).
Article  Google Scholar 
Wu, W. et al. Stable and uniform self-assembled organic diradical molecules for perovskite photovoltaics. Science 389, 195–199 (2025).
Article  Google Scholar 
Jia, L. et al. Efficient perovskite/silicon tandem with asymmetric self-assembly molecule. Nature 644, 912–919 (2025).
Article  Google Scholar 
Luo, Y. et al. Inductive effects in molecular contacts enable wide-bandgap perovskite cells for efficient perovskite/TOPCon tandems. Nat. Commun. 16, 4516 (2025).
Article  Google Scholar 
Duan, L. et al. Over 29%-efficient, stable n–i–p monolithic perovskite/silicon tandem solar cells based on double-sided poly-Si/SiO2 passivating contact silicon cells. J. Mater. Chem. A 12, 20006–20016 (2024).
Article  Google Scholar 
Li, B. et al. Atomic-layer-deposition-free monolithic perovskite/silicon tandem solar cell reaching 29.91% power conversion on industrial PERX/TOPCon-like silicon bottom cells. ACS Energy Lett 9, 4550–4556 (2024).
Article  Google Scholar 
Qiao, L. et al. Freezing halide segregation under intense light for photostable perovskite/silicon tandem solar cells. Adv. Energy Mater. 14, 2302983 (2024).
Article  Google Scholar 
Zheng, J. et al. Polycrystalline silicon tunnelling recombination layers for high-efficiency perovskite/tunnel oxide passivating contact tandem solar cells. Nat. Energy 8, 1250–1261 (2023).
Article  Google Scholar 
Wang, L. et al. Ultra-uniform perovskite film with minimized interconnection energy loss for efficient perovskite/TOPCon tandem solar cells. Joule 9, 102174 (2025).
Article  Google Scholar 
Elsmani, M. I. et al. Recent issues and configuration factors in perovskite-silicon tandem solar cells towards large scaling production. Nanomaterials 11, 3186 (2021).
Article  Google Scholar 
Ballif, C., Haug, F.-J., Boccard, M., Verlinden, P. J. & Hahn, G. Status and perspectives of crystalline silicon photovoltaics in research and industry. Nat. Rev. Mater. 7, 597–616 (2022).
Article  Google Scholar 
Chen, H. et al. Improved charge extraction in inverted perovskite solar cells with dual-site-binding ligands. Science 384, 189–193 (2024).
Article  Google Scholar 
Wang, J. et al. Halide homogenization for low energy loss in 2-eV-bandgap perovskites and increased efficiency in all-perovskite triple-junction solar cells. Nat. Energy 9, 70–80 (2024).
Article  Google Scholar 
Gao, H. et al. Homogeneous crystallization and buried interface passivation for perovskite tandem solar modules. Science 383, 855–859 (2024).
Article  Google Scholar 
Jiang, X. et al. Surface heterojunction based on n-type low-dimensional perovskite film for highly efficient perovskite tandem solar cells. Natl Sci. Rev. 11, nwae055 (2024).
Article  Google Scholar 
Zhang, T. et al. MA cation-induced diffusional growth of low-bandgap FA-Cs perovskites driven by natural gradient annealing. Research 2021, 2021/9765106 (2021).
Article  Google Scholar 
Yang, W. S. et al. High-performance photovoltaic perovskite layers fabricated through intramolecular exchange. Science 348, 1234–1237 (2015).
Article  Google Scholar 
Zhang, Y. et al. Synchronized crystallization in tin-lead perovskite solar cells. Nat. Commun. 15, 6887 (2024).
Article  Google Scholar 
Zuo, W. et al. Coordination chemistry as a universal strategy for a controlled perovskite crystallization. Adv. Mater. 35, 2302889 (2023).
Article  Google Scholar 
Chen, R. et al. Reduction of bulk and surface defects in inverted methylammonium-and bromide-free formamidinium perovskite solar cells. Nat. Energy 8, 839–849 (2023).
Article  Google Scholar 
Amalu, E. H. & Fabunmi, O. A. Thermal control of crystalline silicon photovoltaic (c-Si PV) module using Docosane phase change material (PCM) for improved performance. Sol. Energy 234, 203–221 (2022).
Article  Google Scholar 
Li, N. et al. Liquid medium annealing for fabricating durable perovskite solar cells with improved reproducibility. Science 373, 561–567 (2021).
Article  Google Scholar 
Huang, T. et al. Performance-limiting formation dynamics in mixed-halide perovskites. Sci. Adv. 7, eabj1799 (2021).
Article  Google Scholar 
Chen, S. et al. Stabilizing perovskite-substrate interfaces for high-performance perovskite modules. Science 373, 902–907 (2021).
Article  Google Scholar 
Zheng, X. et al. Co-deposition of hole-selective contact and absorber for improving the processability of perovskite solar cells. Nat. Energy 8, 462–472 (2023).
Article  Google Scholar 
Chen, S. et al. Crystallization in one-step solution deposition of perovskite films: upward or downward?. Sci. Adv. 7, eabb2412 (2021).
Article  Google Scholar 
Jeon, N. J. et al. Solvent engineering for high-performance inorganic–organic hybrid perovskite solar cells. Nat. Mater. 13, 897–903 (2014).
Article  Google Scholar 
McPhie, K. A. et al. Discovery and optimisation of a covalent ligand for TRIM25 and its application to targeted protein ubiquitination. Chem. Sci. 16, 10432–10443 (2025).
Article  Google Scholar 
Warner, K. D., Hajdin, C. E. & Weeks, K. M. Principles for targeting RNA with drug-like small molecules. Nat. Rev. Drug Discovery 17, 547–558 (2018).
Article  Google Scholar 
Assaf, K. I. & Nau, W. M. Cucurbiturils: from synthesis to high-affinity binding and catalysis. Chem. Soc. Rev. 44, 394–418 (2015).
Article  Google Scholar 
Fei, C. et al. Lead-chelating hole-transport layers for efficient and stable perovskite minimodules. Science 380, 823–829 (2023).
Article  Google Scholar 
Zou, Y. et al. Manipulating crystallization dynamics through chelating molecules for bright perovskite emitters. Nat. Commun. 12, 4831 (2021).
Article  Google Scholar 
Jiang, X. et al. One-step synthesis of SnI2·(DMSO)x adducts for high-performance tin perovskite solar cells. J. Am. Chem. Soc. 143, 10970–10976 (2021).
Article  Google Scholar 
Su, L. et al. Passivating defects via retarding the reaction rate of FAI and PbI2 enables stable perovskite solar cells. ACS Appl. Mater. Interfaces 16, 20755–20766 (2024).
Google Scholar 
Lu, Y. et al. Stabilization of organic cations in lead halide perovskite solar cells using phosphine oxides derivatives. J. Am. Chem. Soc. 146, 22387–22395 (2024).
Article  Google Scholar 
Guo, R. et al. Trace water in lead iodide affecting perovskite crystal nucleation limits the performance of perovskite solar cells. Adv. Mater. 36, 2310237 (2024).
Article  Google Scholar 
Nagane, S. et al. Tetrafluoroborate-induced reduction in defect density in hybrid perovskites through halide management. Adv. Mater. 33, 2102462 (2021).
Article  Google Scholar 
Richter, J. M. et al. Enhancing photoluminescence yields in lead halide perovskites by photon recycling and light out-coupling. Nat. Commun. 7, 13941 (2016).
Article  Google Scholar 
Bi, E. et al. Diffusion engineering of ions and charge carriers for stable efficient perovskite solar cells. Nat. Commun. 8, 15330 (2017).
Article  Google Scholar 
Wang, X. et al. Regulating phase homogeneity by self-assembled molecules for enhanced efficiency and stability of inverted perovskite solar cells. Nat. Photonics 18, 1269–1275 (2024).
Article  Google Scholar 
Mariotti, S. et al. Interface engineering for high-performance, triple-halide perovskite–silicon tandem solar cells. Science 381, 63–69 (2023).
Article  Google Scholar 
Ying, Z. et al. Monolithic perovskite/black-silicon tandems based on tunnel oxide passivated contacts. Joule 6, 2644–2661 (2022).
Article  Google Scholar 
Sveinbjörnsson, K. et al. Monolithic perovskite/silicon tandem solar cell with 28.7% efficiency using industrial silicon bottom cells. ACS Energy Lett 7, 2654–2656 (2022).
Article  Google Scholar 
Wu, Y. et al. 27.6% perovskite/c-Si tandem solar cells using industrial fabricated TOPCon device. Adv. Energy Mater. 12, 2200821 (2022).
Article  Google Scholar 
Nogay, G. et al. 25.1%-efficient monolithic perovskite/silicon tandem solar cell based on ap-type monocrystalline textured silicon wafer and high-temperature passivating contacts. ACS Energy Lett 4, 844–845 (2019).
Article  Google Scholar 
Wang, L. et al. Highly efficient monolithic perovskite/TOPCon silicon tandem solar cells enabled by ‘halide locking’. Adv. Mater. 37, 2416150 (2025).
Article  Google Scholar 
Khenkin, M. V. et al. Consensus statement for stability assessment and reporting for perovskite photovoltaics based on ISOS procedures. Nat. Energy 5, 35–49 (2020).
Article  Google Scholar 
Benecke, G. et al. A customizable software for fast reduction and analysis of large X-ray scattering data sets: applications of the new DPDAK package to small-angle X-ray scattering and grazing-incidence small-angle X-ray scattering. J. Appl. Crystallogr. 47, 1797–1803 (2014).
Article  Google Scholar 
Frisch, M. J. et al. Gaussian 09, Revision C.01 (Gaussian, Inc., 2016).
Eymard, R. Finite volume methods. Handb. Numer. Anal. 7, 713 (2000).
MathSciNet  Google Scholar 
Kresse, G. & Furthmüller, J. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. Phys. Rev. B 54, 11169 (1996).
Article  Google Scholar 
Kresse, G. & Joubert, D. From ultrasoft pseudopotentials to the projector augmented-wave method. Phys. Rev. B 59, 1758 (1999).
Article  Google Scholar 
Perdew, J. P., Burke, K. & Ernzerhof, M. Generalized gradient approximation made simple. Phys. Rev. Lett. 77, 3865 (1996).
Article  Google Scholar 
Download references
Y.H. acknowledges the support from Agency for Science, Technology and Research (A*STAR) under its Materials Technology Cluster Industrial Research Grant (M23M6c0108). Q.Z., R.G., S.L., N.L., Z.S., X.G., H.L., Z.D., J.C., Y.-D.W., R.L., X.W., Z.J., L.K.L., D.L. and Y.H. are affiliated with the Solar Energy Research Institute of Singapore (SERIS), a research institute at the National University of Singapore (NUS). SERIS is supported by the National University of Singapore (NUS), the National Research Foundation Singapore (NRF), the Energy Market Authority of Singapore (EMA) and the Singapore Economic Development Board (EDB). This work was supported in part by the BL14B1 beamline of Shanghai Synchrotron Radiation Facility (SSRF), Shanghai, China. We would like to acknowledge that computational work involved in this research work is partially supported by NUS IT’s Research Computing group under grant number NUSREC-HPC-00001.
These authors contributed equally: Qilin Zhou, Renjun Guo, Shunchang Liu, Nengxu Li, Menglei Xu.
Department of Chemical and Biomolecular Engineering, National University of Singapore, Singapore, Singapore
Qilin Zhou, Shunchang Liu, Nengxu Li, Zhuojie Shi, Xiao Guo, Haoming Liang, Zijing Dong, Jinxi Chen, Yu-Duan Wang, Ran Luo, Xi Wang, Zhenrong Jia & Yi Hou
Solar Energy Research Institute of Singapore, National University of Singapore, Singapore, Singapore
Qilin Zhou, Renjun Guo, Shunchang Liu, Nengxu Li, Zhuojie Shi, Xiao Guo, Haoming Liang, Zijing Dong, Jinxi Chen, Yu-Duan Wang, Ran Luo, Xi Wang, Zhenrong Jia, Ling Kai Lee, Donny Lai & Yi Hou
School of Physics, University of Electronic Science and Technology of China, Chengdu, China
Shunchang Liu
Zhejiang Jinko Solar Co. Ltd., Jiaxing, China
Menglei Xu, Xinyu Zhang, Jungan Wang & Jie Yang
Zhejiang Key Laboratory of Advanced Tandem Photovoltaic Technology, Jiaxing, China
Menglei Xu, Xinyu Zhang & Jungan Wang
Shanghai Jinko Green Energy Enterprise Management Co. Ltd., Shanghai, China
Xinyu Zhang & Hao Jin
School of Physical Science and Technology, ShanghaiTech University, Shanghai, China
Xianyuan Jiang
Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, China
Lu Wang
Photon etc. Ltd, Montreal, Quebec, Canada
Laura-Isabelle Dion-Bertrand
Department of Applied Chemistry and Institute of Molecular Science, National Yang Ming Chiao Tung University, Hsinchu, Taiwan
Chun-Hsiao Kuan, Sung-Fu Hung & Eric Wei-Guang Diau
Center for Emergent Functional Matter Science, National Yang Ming Chiao Tung University, Hsinchu, Taiwan
Chun-Hsiao Kuan, Sung-Fu Hung & Eric Wei-Guang Diau
Department of Mechanical Engineering, National University of Singapore, Singapore, Singapore
Wentao Yan
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
PubMed Google Scholar
Q.Z. and Y.H. conceived the idea and designed the experiments. Y.H. directed and supervised the project. M.X., J.W., X.Z., J.Y. and H.J. fabricated the Si bottom cells. Q.Z., M.X., J.W., X.Z., J.Y. and H.J. fabricated the perovskite tandem solar cells. Q.Z. conducted film fabrication and characterizations. X.J., C.-H.K., S.-F.H. and E.W.-G.D. conducted in situ PL and GIWAXS measurements. L.W. and W.Y. performed thermal simulation. Z.S., R.L. and Z.J. conducted NMR measurement, ESP and DFT calculations. X.G., H.L., Z.D., J.C., Y.-D.W. and X.W. conducted confocal PL, SEM, XPS and KPFM measurements. Q.Z., R.G. and L.-I.D.-B. conducted TRPL and hyperspectral measurements. D.L. and L.K.L. performed tandem device encapsulation. Q.Z. and R.G. wrote the original manuscript. Q.Z., R.G., S.L., N.L. and Y.H. reviewed and edited the paper. All authors read and commented on the paper.
Correspondence to Xinyu Zhang or Yi Hou.
Y.H. is the founder of Singfilm Solar, a company commercializing perovskite photovoltaics. M.X., J.W., X.Z., J.Y. and H.J are employees of Zhejiang Jinko Solar Co. Ltd. L.-I.D.-B. is an employee of Photon etc. Ltd. The other authors declare no competing interests.
Nature Energy thanks Eike Koehnenand, Lars Korte, Sang Il Seok and the other, anonymous, reviewer(s) for their contribution to the peer review of this work.
Publisher’s note Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.
Supplementary Note 1, Figs. 1–24 and Tables 1–3.
Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.
Reprints and permissions
Zhou, Q., Guo, R., Liu, S. et al. Additive-assisted perovskite crystallization on industrial TOPCon silicon for tandem solar cells with improved efficiency. Nat Energy (2026). https://doi.org/10.1038/s41560-026-02010-z
Download citation
Received:
Accepted:
Published:
Version of record:
DOI: https://doi.org/10.1038/s41560-026-02010-z
Anyone you share the following link with will be able to read this content:
Sorry, a shareable link is not currently available for this article.

Provided by the Springer Nature SharedIt content-sharing initiative
Advertisement
Nature Energy (Nat Energy)
ISSN 2058-7546 (online)
© 2026 Springer Nature Limited
Sign up for the Nature Briefing newsletter — what matters in science, free to your inbox daily.

source

This entry was posted in Renewables. Bookmark the permalink.

Leave a Reply