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Journal ArticleDOI

Performance enhancement of perovskite solar cells using trimesic acid additive in the two-step solution method

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TLDR
In this article, trimesic acid is used as an additive in the lead precursor solution to prepare perovskite film by a two-step solution method to improve the performances of perovsite solar cell.
About
This article is published in Journal of Power Sources.The article was published on 2019-06-30. It has received 33 citations till now. The article focuses on the topics: Trimesic acid & Perovskite solar cell.

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Citations
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Journal ArticleDOI

Lewis acid/base approach for efficacious defect passivation in perovskite solar cells

TL;DR: In this paper, a feasible Lewis acid/base passivation strategy and its effects on energy level alignment, recombination kinetics, hysteresis behavior and operational stability for efficient PSCs are comprehensively reviewed.
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A review on two-dimensional (2D) and 2D-3D multidimensional perovskite solar cells: Perovskites structures, stability, and photovoltaic performances

TL;DR: In this article, the authors discuss the recent progress and the advantages of 2D and 2D-3D perovskite materials as absorber for solar cell applications, and discuss the structure and the unique properties of two-dimensional and multidimensional 2D 3D-Perovskites materials.
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Thermal Stability and Performance Enhancement of Perovskite Solar Cells Through Oxalic Acid-Induced Perovskite Formation

TL;DR: Achieving long-term stability along with high power conversion efficiency (PCE) is the biggest obstacle for the pursuit of organic-inorganic perovskite solar cells (PSCs) toward commercialization as mentioned in this paper.
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Efficient and stable pure α-phase FAPbI3 perovskite solar cells with a dual engineering strategy: Additive and dimensional engineering approaches

TL;DR: In this paper , a two-step approach was proposed to improve the performance and stability of 3D FAPbI3 perovskite solar cells through additive engineering based on propionic acid and post-treatment with 2-(4-fluorophenyl)ethyl ammonium iodide (FPEAI) solution doped with nitrosonium tetrafluoroborate (NOBF4).
Journal ArticleDOI

Review of Two‐Step Method for Lead Halide Perovskite Solar Cells

TL;DR: The two-step method can facilitate the formation of a perovskite film with high quality and reproducibility, which has a significant impact on their practical application as mentioned in this paper .
References
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Journal ArticleDOI

Efficient Hybrid Solar Cells Based on Meso-Superstructured Organometal Halide Perovskites

TL;DR: A low-cost, solution-processable solar cell, based on a highly crystalline perovskite absorber with intense visible to near-infrared absorptivity, that has a power conversion efficiency of 10.9% in a single-junction device under simulated full sunlight is reported.
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Solvent engineering for high-performance inorganic–organic hybrid perovskite solar cells

TL;DR: A bilayer architecture comprising the key features of mesoscopic and planar structures obtained by a fully solution-based process is reported, providing important progress towards the understanding of the role of solution-processing in the realization of low-cost and highly efficient perovskite solar cells.
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Incorporation of rubidium cations into perovskite solar cells improves photovoltaic performance

TL;DR: This work shows that the small and oxidation-stable rubidium cation (Rb+) can be embedded into a “cation cascade” to create perovskite materials with excellent material properties and achieved stabilized efficiencies of up to 21.6% on small areas.
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High-efficiency solution-processed perovskite solar cells with millimeter-scale grains

TL;DR: A solution-based hot-casting technique is demonstrated to grow continuous, pinhole-free thin films of organometallic perovskites with millimeter-scale crystalline grains that are applicable to several other material systems plagued by polydispersity, defects, and grain boundary recombination in solution-processed thin films.
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Efficient inorganic–organic hybrid heterojunction solar cells containing perovskite compound and polymeric hole conductors

TL;DR: In this paper, a layered sandwich-type architecture is proposed for next-generation dye-sensitized solar cells, which consists of a bicontinuous three-dimensional nanocomposite of mesoporous (mp)-TiO2,w ith CH 3NH3PbII3 perovskite as light harvester, as well as a polymeric hole conductor.
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Where can I get perovskite?

This can be attributed to the improvement of crystal structure and quality of perovskite film.