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Hole transport materials (HTMs) have a critical impact on the performance of perovskite solar cells (PSCs). Especially, the dopant-free HTMs could avoid the usage of hygroscopic dopants and reduce costs, which are important for device stability. Most of the current organic dopant-free HTMs are polycyclic aromatic hydrocarbons-based planar conjugated structures. Yet, the synthesis of conjugated fused heterocycles is often complicated. In this work, intramolecular non-covalent interaction is introduced to construct two organic HTMs (DCT and DTC), which can be facilely obtained through simple reactions. Compared to DTC with hexyl chain on the central benzene ring, DCT with hexyloxy chains shows better planarity in the core structure, as a result of the intramolecular non-covalent interactions between oxygen on hexyloxy and sulfur atom on the adjacent thiophene, as reflected from its single crystal structure. Moreover, DCT in a pristine state shows a decent hole mobility comparable to the doped Spiro-OMeTAD. Ultimately, conventional devices using dopant-free DCT as HTM show a high efficiency of 22.50%, with excellent long-term stability, and light and thermal stability. The results show that the noncovalent interaction is a useful and simple design strategy for dopant-free HTMs, that can effectively improve the efficiency and stability of PSCs.
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http://dx.doi.org/10.1002/smll.202407027 | DOI Listing |
Chem Commun (Camb)
September 2025
Longzihu New Energy Laboratory, Zhengzhou Institute of Emerging Industrial Technology, Henan University, Zhengzhou 450000, China.
We synthesized two linear dopant-free hole transport materials (HTMs), denoted as NT and iNT, by coupling methoxytriphenylamine donor unit with either naphtho[1,2-:5,6-']bis[1,2,5]thiadiazole or its isomeric counterparts naphtho[1,2-:5,6-']bis([1,2,3]thiadiazole) as acceptor units. The fused-ring isomerization structure of iNT endows it with a substantial dipole moment and well-aligned energy levels, which are highly favorable for efficient free-charge extraction. Compared to devices based on NT, CsPbI inorganic perovskite solar cells (IPSCs) employing iNT exhibited significantly enhanced performance, achieving a power conversion efficiency (PCE) of 18.
View Article and Find Full Text PDFSmall
July 2025
Institute for Energy Research, School of Energy and Power Engineering, Jiangsu University, Zhenjiang, 212013, China.
High-performance, dopant-free hole transport materials (HTMs) play a crucial role in stabilized perovskite solar cells (PSCs). Skillfully using noncovalent bonding strategies to construct dopant-free HTM is both attractive and challenging. In this work, two dopant-free HTMs with multisite passivation are designed and synthesized.
View Article and Find Full Text PDFACS Appl Mater Interfaces
July 2025
College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, P. R. China.
Hole-transport materials (HTMs) are essential for the efficient extraction and transport of holes from the perovskite layer to the electrodes, thus playing a crucial role in enhancing the performance of perovskite solar cells (PSCs). The introduction of halogens into the polymer-based HTMs contributes to the excellent charge transport and photovoltaic properties of the devices, which provides a promising avenue for improving PSC performance. In this study, three polymer-based HTMs, PM-2F (PM6), PM-4F, and PM-4Cl, were synthesized by strategically incorporating different numbers and types of halogen atoms.
View Article and Find Full Text PDFOrg Lett
July 2025
Department of Chemistry, National Central University, Zhongli 32001, Taiwan.
We introduce an electron-rich hole-transporting material (HTM), , based on a sulfur-rich terthiophene core. This HTM features two triphenylamine donor groups at the 4,4″ positions and four additional triphenylamine groups at the 5,5″ positions connected by vinylene linkages. Its good hole-transporting properties, reduced series resistance, and effective defect passivation contribute to the improved performance.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
August 2025
Laboratory of Advanced Optoelectronic Materials, Suzhou Key Laboratory of Novel Semiconductor-optoelectronics Materials and Devices, State Key Laboratory of Bioinspired Interfacial Materials Science, College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou, 215123
Enabling large-area deposition of dopant-free organic hole transport layers (HTLs) with high reproducibility and uniformity is crucial for fully printed n-i-p perovskite solar cell (pero-SC) modules. However, typical polymer hole transport materials (HTMs), with non-Newtonian fluid characteristics, show shear rate-dependent viscosity during the printing process, whereas blade-coated small-molecule HTLs often exhibit unfavorable assembly behavior and solute random distribution caused by molecular aggregation and low viscosity; these factors impose challenges on blade-coating of high-quality large-area HTL films. Here, we designed a dopant-free small molecule BDT-MB with high mobility and further proposed a molecular cooperative (MC) strategy by combining with polymer D18.
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