Matches in SemOpenAlex for { <https://semopenalex.org/work/W4380319354> ?p ?o ?g. }
- W4380319354 endingPage "6688" @default.
- W4380319354 startingPage "6681" @default.
- W4380319354 abstract "In recent years, the efficiency of perovskite solar cells (PSCs) has rapidly increased, making PSCs commercially viable and able to compete with silicon solar cells. However, the technology for large-scale production of perovskite thin films still poses a significant challenge to the commercialization of PSCs. This is mainly because the thickness of the perovskite light-absorbing film is less than 1 μm and easily produces pinholes during large-scale production, causing serious charge recombination and reducing the efficiency of the device. As a result, the efficiencies of most large-scale PSC modules are significantly lower than those of small-size devices. Vapor-reaction technology is considered a crucial method to enhance the uniformity of perovskite thin films. However, current techniques are not yet advanced enough to deposit pinhole-free perovskite thin films on a large scale. One major challenge is that lead iodide (PbI2) precursor thin films have a tendency to develop a sheet-like structure with a loose morphology, which contributes to the formation of pinholes in the perovskite film. Additionally, uncoordinated Pb2+ could be easily generated in the PbI2 film during thermal evaporation, causing an increase in trap-states in the perovskite crystal. To address this, we developed a valine treatment process in this study to change the preferred orientation of PbI2 from a sheet-like to a particle-like aggregate and obtained compact PbI2 thin films. Meanwhile, this valine vapor treatment can significantly reduce the uncoordinated Pb2+ in PbI2 films. Based on this, we successfully prepared pinhole-free perovskite thin films using a vapor–solid reaction. Perovskite films based on these valine-treated PbI2 exhibited a reduced trap density and significantly improved PSCs’ performance, with a maximum efficiency exceeding 21%. Large-area PSC mini-modules (5 cm × 5 cm) produced from the perovskite film (30 cm × 30 cm) showed uniformly distributed power conversion efficiency values exceeding 17%, with the highest value reaching 18.78%. We believe that this facile valine vapor treatment holds great potential for the large-scale production of stable and high-efficiency PSC modules." @default.
- W4380319354 created "2023-06-13" @default.
- W4380319354 creator A5000132499 @default.
- W4380319354 creator A5028205508 @default.
- W4380319354 creator A5040829075 @default.
- W4380319354 creator A5043706090 @default.
- W4380319354 creator A5051535941 @default.
- W4380319354 creator A5054723411 @default.
- W4380319354 creator A5056673049 @default.
- W4380319354 creator A5063771437 @default.
- W4380319354 creator A5085972151 @default.
- W4380319354 date "2023-06-12" @default.
- W4380319354 modified "2023-10-17" @default.
- W4380319354 title "Valine-Modified PbI<sub>2</sub> for the Growth of Pinhole-Free Lead Halide Perovskite Thin Films by Vapor–Solid Reaction" @default.
- W4380319354 cites W2006304022 @default.
- W4380319354 cites W2015872084 @default.
- W4380319354 cites W2057327293 @default.
- W4380319354 cites W2093294280 @default.
- W4380319354 cites W2138389980 @default.
- W4380319354 cites W2202928481 @default.
- W4380319354 cites W2231517473 @default.
- W4380319354 cites W2287339579 @default.
- W4380319354 cites W2334658948 @default.
- W4380319354 cites W2400226538 @default.
- W4380319354 cites W2478184717 @default.
- W4380319354 cites W2483722314 @default.
- W4380319354 cites W2548668387 @default.
- W4380319354 cites W2585880588 @default.
- W4380319354 cites W2587919145 @default.
- W4380319354 cites W2742757934 @default.
- W4380319354 cites W2757829870 @default.
- W4380319354 cites W2763699341 @default.
- W4380319354 cites W2892952247 @default.
- W4380319354 cites W2902722150 @default.
- W4380319354 cites W2915578198 @default.
- W4380319354 cites W2916279091 @default.
- W4380319354 cites W2923835578 @default.
- W4380319354 cites W2937258374 @default.
- W4380319354 cites W2944370267 @default.
- W4380319354 cites W2972746363 @default.
- W4380319354 cites W2988032396 @default.
- W4380319354 cites W2999452528 @default.
- W4380319354 cites W3012352590 @default.
- W4380319354 cites W3019667550 @default.
- W4380319354 cites W3040919326 @default.
- W4380319354 cites W3092957694 @default.
- W4380319354 cites W3105950253 @default.
- W4380319354 cites W3108966490 @default.
- W4380319354 cites W3126828772 @default.
- W4380319354 cites W3137995514 @default.
- W4380319354 cites W3158878597 @default.
- W4380319354 cites W3176055059 @default.
- W4380319354 cites W3196046854 @default.
- W4380319354 cites W4206346107 @default.
- W4380319354 cites W4281640703 @default.
- W4380319354 cites W4293240738 @default.
- W4380319354 cites W4297005849 @default.
- W4380319354 cites W4308680069 @default.
- W4380319354 doi "https://doi.org/10.1021/acsaem.3c00676" @default.
- W4380319354 hasPublicationYear "2023" @default.
- W4380319354 type Work @default.
- W4380319354 citedByCount "0" @default.
- W4380319354 crossrefType "journal-article" @default.
- W4380319354 hasAuthorship W4380319354A5000132499 @default.
- W4380319354 hasAuthorship W4380319354A5028205508 @default.
- W4380319354 hasAuthorship W4380319354A5040829075 @default.
- W4380319354 hasAuthorship W4380319354A5043706090 @default.
- W4380319354 hasAuthorship W4380319354A5051535941 @default.
- W4380319354 hasAuthorship W4380319354A5054723411 @default.
- W4380319354 hasAuthorship W4380319354A5056673049 @default.
- W4380319354 hasAuthorship W4380319354A5063771437 @default.
- W4380319354 hasAuthorship W4380319354A5085972151 @default.
- W4380319354 hasConcept C111368507 @default.
- W4380319354 hasConcept C120665830 @default.
- W4380319354 hasConcept C121332964 @default.
- W4380319354 hasConcept C127313418 @default.
- W4380319354 hasConcept C127413603 @default.
- W4380319354 hasConcept C155011858 @default.
- W4380319354 hasConcept C171250308 @default.
- W4380319354 hasConcept C171560689 @default.
- W4380319354 hasConcept C179104552 @default.
- W4380319354 hasConcept C185592680 @default.
- W4380319354 hasConcept C19067145 @default.
- W4380319354 hasConcept C192562407 @default.
- W4380319354 hasConcept C206991015 @default.
- W4380319354 hasConcept C2776700484 @default.
- W4380319354 hasConcept C2777289219 @default.
- W4380319354 hasConcept C42360764 @default.
- W4380319354 hasConcept C49040817 @default.
- W4380319354 hasConceptScore W4380319354C111368507 @default.
- W4380319354 hasConceptScore W4380319354C120665830 @default.
- W4380319354 hasConceptScore W4380319354C121332964 @default.
- W4380319354 hasConceptScore W4380319354C127313418 @default.
- W4380319354 hasConceptScore W4380319354C127413603 @default.
- W4380319354 hasConceptScore W4380319354C155011858 @default.
- W4380319354 hasConceptScore W4380319354C171250308 @default.
- W4380319354 hasConceptScore W4380319354C171560689 @default.
- W4380319354 hasConceptScore W4380319354C179104552 @default.